S-1313D23H-A4T1U3 [ABLIC]

105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR;
S-1313D23H-A4T1U3
型号: S-1313D23H-A4T1U3
厂家: ABLIC    ABLIC
描述:

105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR

输入元件
文件: 总49页 (文件大小:889K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
S-1313xxxH Series  
105°C OPERATION,  
5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
www.ablic.com  
© ABLIC Inc., 2018-2019  
Rev.1.2_00  
The S-1313xxxH Series, developed by using the CMOS technology, is a positive voltage regulator IC which has the super  
low current consumption and the low dropout voltage.  
Current consumption is as low as 0.9 μA typ., and a ceramic capacitor of 0.1 μF or more can be used as the input and output  
capacitors.  
It also has high-accuracy output voltage of 1.0%.  
Features  
Output voltage:  
Input voltage:  
1.0 V to 3.5 V, selectable in 0.05 V step.  
1.5 V to 5.5 V  
Output voltage accuracy:  
Dropout voltage:  
1.0% (1.0 V to 1.45 V output product: 15 mV)  
170 mV typ. (2.8 V output product, IOUT = 100 mA)  
Current consumption:  
During operation:  
During power-off:  
0.9 μA typ., 1.35 μA max.  
0.01 μA typ., 0.1 μA max.  
Output current:  
Input capacitor:  
Output capacitor:  
Built-in overcurrent protection circuit:  
Built-in thermal shutdown circuit:  
Built-in ON / OFF circuit:  
Possible to output 200 mA (VOUT(S) 1.4 V, VIN VOUT(S) + 1.0 V)*1  
A ceramic capacitor can be used. (0.1 μF or more)  
A ceramic capacitor can be used. (0.1 μF or more)  
Limits overcurrent of output transistor  
Detection temperature 150°C typ.  
Ensures long battery life  
Discharge shunt function "available" / "unavailable" is selectable.  
Pull-down function "available" / "unavailable" is selectable.  
Ta = 40°C to +105°C  
Operation temperature range:  
Lead-free (Sn 100%), halogen-free  
*1. Please make sure that the loss of the IC will not exceed the power dissipation when the output current is large.  
Applications  
Constant-voltage power supply for portable communication device, digital camera, and digital audio player  
Constant-voltage power supply for battery-powered device  
Constant-voltage power supply for home electric / electronic appliance  
Constant-voltage power supply for industrial equipment  
Packages  
SOT-23-5  
SC-82AB  
HSNT-4(1010)  
HSNT-4(0808)  
1
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Block Diagrams  
1. S-1313xxxH Series A type  
Function  
Status  
*1  
ON / OFF logic  
Discharge shunt  
function  
Constant current  
source pull-down  
Active "H"  
VIN  
VOUT  
Available  
Available  
Overcurrent  
protection circuit  
Thermal shutdown circuit  
+
ON / OFF  
ON / OFF circuit  
Reference  
voltage circuit  
*1  
VSS  
*1. Parasitic diode  
Figure 1  
2. S-1313xxxH Series B type  
Function  
Status  
*1  
ON / OFF logic  
Discharge shunt  
function  
Active "H"  
VIN  
VOUT  
Available  
Overcurrent  
Constant current  
source pull-down  
protection circuit  
Unavailable  
Thermal shutdown circuit  
+
ON / OFF  
ON / OFF circuit  
Reference  
voltage circuit  
*1  
VSS  
*1. Parasitic diode  
Figure 2  
2
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
3. S-1313xxxH Series C type  
Function  
Status  
*1  
ON / OFF logic  
Discharge shunt  
function  
Constant current  
source pull-down  
Active "H"  
VIN  
VOUT  
Unavailable  
Available  
Overcurrent  
protection circuit  
Thermal shutdown circuit  
+
ON / OFF  
ON / OFF circuit  
Reference  
voltage circuit  
VSS  
*1. Parasitic diode  
Figure 3  
4. S-1313xxxH Series D type  
Function  
Status  
*1  
ON / OFF logic  
Discharge shunt  
function  
Constant current  
source pull-down  
Active "H"  
VIN  
VOUT  
Unavailable  
Unavailable  
Overcurrent  
protection circuit  
Thermal shutdown circuit  
+
ON / OFF  
ON / OFF circuit  
Reference  
voltage circuit  
VSS  
*1. Parasitic diode  
Figure 4  
3
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Product Name Structure  
Users can select the product type, output voltage, and package type for the S-1313xxxH Series. Refer to "1. Product  
name" regarding the contents of product name, "2. Function list of product type" regarding the product type,  
"3. Packages" regarding the package drawings, "4. Product name list" regarding details of the product name.  
1. Product name  
S-1313  
x
xx  
H
-
xxxx  
U
3
Environmental code  
U:  
Lead-free (Sn 100%), halogen-free  
Package abbreviation and IC packing specifications*1  
M5T1: SOT-23-5, Tape  
N4T1: SC-82AB, Tape  
A4T2: HSNT-4(1010), Tape  
A4T1: HSNT-4(0808), Tape  
Operation temperature  
H:  
Ta = 40°C to +105°C  
Output voltage*2  
10 to 35  
(e.g., when the output voltage is 1.0 V, it is expressed as 10.)  
Product type*3  
A to D  
*1. Refer to the tape drawing.  
*2. If you request the product which has 0.05 V step, contact our sales representatives.  
*3. Refer to "2. Function list of product type".  
2. Function list of product type  
Table 1  
Product Type  
ON / OFF Logic  
Active "H"  
Discharge Shunt Function Constant Current Source Pull-down  
A
B
C
D
Available  
Available  
Active "H"  
Active "H"  
Active "H"  
Available  
Unavailable  
Available  
Unavailable  
Unavailable  
Unavailable  
3. Packages  
Table 2 Package Drawing Codes  
Package Name  
SOT-23-5  
Dimension  
Tape  
Reel  
Land  
MP005-A-P-SD  
NP004-A-P-SD  
PL004-A-P-SD  
PK004-A-P-SD  
MP005-A-C-SD  
NP004-A-C-SD  
PL004-A-C-SD  
PK004-A-C-SD  
MP005-A-R-SD  
NP004-A-R-SD  
PL004-A-R-SD  
PK004-A-R-SD  
SC-82AB  
HSNT-4(1010)  
HSNT-4(0808)  
PL004-A-L-SD  
PK004-A-L-SD  
4
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
4. Product name list  
4. 1 S-1313xxxH Series A type  
ON / OFF logic:  
Discharge shunt function:  
Active "H"  
Available  
Constant current source pull-down: Available  
Table 3  
SOT-23-5  
HSNT-4(1010)  
HSNT-4(0808)  
Output Voltage  
1.2 V 15 mV  
1.8 V 1.0%  
2.3 V 1.0%  
3.0 V 1.0%  
3.3 V 1.0%  
SC-82AB  
S-1313A12H-M5T1U3  
S-1313A18H-M5T1U3  
S-1313A23H-M5T1U3  
S-1313A30H-M5T1U3  
S-1313A33H-M5T1U3  
S-1313A12H-N4T1U3  
S-1313A18H-N4T1U3  
S-1313A23H-N4T1U3  
S-1313A30H-N4T1U3  
S-1313A33H-N4T1U3  
S-1313A12H-A4T2U3  
S-1313A18H-A4T2U3  
S-1313A23H-A4T2U3  
S-1313A30H-A4T2U3  
S-1313A33H-A4T2U3  
S-1313A12H-A4T1U3  
S-1313A18H-A4T1U3  
S-1313A23H-A4T1U3  
S-1313A30H-A4T1U3  
S-1313A33H-A4T1U3  
Remark Please contact our sales representatives for products other than the above.  
4. 2 S-1313xxxH Series B type  
ON / OFF logic:  
Discharge shunt function:  
Active "H"  
Available  
Constant current source pull-down: Unavailable  
Table 4  
SC-82AB  
1.2 V 15 mV S-1313B12H-M5T1U3 S-1313B12H-N4T1U3  
SOT-23-5  
HSNT-4(1010)  
HSNT-4(0808)  
Output Voltage  
S-1313B12H-A4T2U3  
S-1313B18H-A4T2U3  
S-1313B23H-A4T2U3  
S-1313B30H-A4T2U3  
S-1313B33H-A4T2U3  
S-1313B12H-A4T1U3  
S-1313B18H-A4T1U3  
S-1313B23H-A4T1U3  
S-1313B30H-A4T1U3  
S-1313B33H-A4T1U3  
1.8 V 1.0%  
2.3 V 1.0%  
3.0 V 1.0%  
3.3 V 1.0%  
S-1313B18H-M5T1U3 S-1313B18H-N4T1U3  
S-1313B23H-M5T1U3 S-1313B23H-N4T1U3  
S-1313B30H-M5T1U3 S-1313B30H-N4T1U3  
S-1313B33H-M5T1U3 S-1313B33H-N4T1U3  
Remark Please contact our sales representatives for products other than the above.  
4. 3 S-1313xxxH Series C type  
ON / OFF logic:  
Active "H"  
Discharge shunt function:  
Unavailable  
Constant current source pull-down: Available  
Table 5  
SC-82AB  
S-1313C12H-N4T1U3  
S-1313C18H-N4T1U3  
S-1313C23H-N4T1U3  
S-1313C30H-N4T1U3  
S-1313C33H-N4T1U3  
SOT-23-5  
HSNT-4(1010)  
HSNT-4(0808)  
Output Voltage  
1.2 V 15 mV  
1.8 V 1.0%  
2.3 V 1.0%  
3.0 V 1.0%  
3.3 V 1.0%  
S-1313C12H-M5T1U3  
S-1313C18H-M5T1U3  
S-1313C23H-M5T1U3  
S-1313C30H-M5T1U3  
S-1313C33H-M5T1U3  
S-1313C12H-A4T2U3  
S-1313C18H-A4T2U3  
S-1313C23H-A4T2U3  
S-1313C30H-A4T2U3  
S-1313C33H-A4T2U3  
S-1313C12H-A4T1U3  
S-1313C18H-A4T1U3  
S-1313C23H-A4T1U3  
S-1313C30H-A4T1U3  
S-1313C33H-A4T1U3  
Remark Please contact our sales representatives for products other than the above.  
4. 4 S-1313xxxH Series D type  
ON / OFF logic:  
Active "H"  
Discharge shunt function:  
Unavailable  
Constant current source pull-down: Unavailable  
Table 6  
SC-82AB  
Output Voltage  
SOT-23-5  
HSNT-4(1010)  
HSNT-4(0808)  
1.2 V 15 mV S-1313D12H-M5T1U3  
S-1313D12H-N4T1U3  
S-1313D18H-N4T1U3  
S-1313D23H-N4T1U3  
S-1313D30H-N4T1U3  
S-1313D33H-N4T1U3  
S-1313D12H-A4T2U3  
S-1313D18H-A4T2U3  
S-1313D23H-A4T2U3  
S-1313D30H-A4T2U3  
S-1313D33H-A4T2U3  
S-1313D12H-A4T1U3  
S-1313D18H-A4T1U3  
S-1313D23H-A4T1U3  
S-1313D30H-A4T1U3  
S-1313D33H-A4T1U3  
1.8 V 1.0%  
2.3 V 1.0%  
3.0 V 1.0%  
3.3 V 1.0%  
S-1313D18H-M5T1U3  
S-1313D23H-M5T1U3  
S-1313D30H-M5T1U3  
S-1313D33H-M5T1U3  
Remark Please contact our sales representatives for products other than the above.  
5
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Pin Configurations  
1. SOT-23-5  
Top view  
Table 7  
Symbol  
VIN  
Pin No.  
Description  
Input voltage pin  
5
4
1
2
3
4
5
VSS  
GND pin  
ON / OFF  
NC*1  
ON / OFF pin  
No connection  
Output voltage pin  
1
2
3
VOUT  
Figure 5  
*1. The NC pin is electrically open.  
The NC pin can be connected to the VIN pin or the VSS pin.  
2. SC-82AB  
Top view  
Table 8  
Pin No.  
Symbol  
ON / OFF  
VSS  
Description  
4
3
1
2
3
4
ON / OFF pin  
GND pin  
VOUT  
VIN  
Output voltage pin  
Input voltage pin  
1
2
Figure 6  
6
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
3. HSNT-4(1010)  
Table 9  
Pin No.  
Symbol  
VOUT  
Description  
Output voltage pin  
Top view  
1
2
3
4
1
2
4
3
VSS  
GND pin  
ON / OFF  
VIN  
ON / OFF pin  
Input voltage pin  
Bottom view  
4
3
1
2
*1  
Figure 7  
*1. Connect the heatsink of backside at shadowed area to the board, and set electric potential GND.  
However, do not use it as the function of electrode.  
4. HSNT-4(0808)  
Table 10  
Symbol  
VOUT  
Pin No.  
Description  
Output voltage pin  
Top view  
1
2
3
4
1
2
4
3
VSS  
GND pin  
ON / OFF  
VIN  
ON / OFF pin  
Input voltage pin  
Bottom view  
4
3
1
2
*1  
Figure 8  
*1. Connect the heat sink of backside at shadowed area to the board, and set electric potential GND.  
However, do not use it as the function of electrode.  
7
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Absolute Maximum Ratings  
Table 11  
(Ta = +25°C unless otherwise specified)  
Item  
Symbol  
Absolute Maximum Rating  
Unit  
V
VIN  
VSS 0.3 to VSS + 6.0  
VSS 0.3 to VSS + 6.0  
VSS 0.3 to VIN + 0.3  
240  
Input voltage  
VON / OFF  
VOUT  
IOUT  
V
Output voltage  
Output current  
V
mA  
°C  
°C  
Operation ambient temperature  
Storage temperature  
Topr  
40 to +105  
40 to +125  
Tstg  
Caution The absolute maximum ratings are rated values exceeding which the product could suffer physical  
damage. These values must therefore not be exceeded under any conditions.  
Thermal Resistance Value  
Table 12  
Item  
Symbol  
Condition  
Min.  
Typ.  
192  
160  
236  
204  
378  
317  
402  
336  
Max.  
Unit  
Board A  
Board B  
Board C  
Board D  
Board E  
Board A  
Board B  
Board C  
Board D  
Board E  
Board A  
Board B  
Board C  
Board D  
Board E  
Board A  
Board B  
Board C  
Board D  
Board E  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
°C/W  
SOT-23-5  
SC-82AB  
Junction-to-ambient thermal resistance*1  
θJA  
HSNT-4(1010)  
HSNT-4(0808)  
*1. Test environment: compliance with JEDEC STANDARD JESD51-2A  
Remark Refer to "Power Dissipation" and "Test Board" for details.  
8
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Electrical Characteristics  
Table 13  
(Ta = +25°C unless otherwise specified)  
Test  
Circuit  
Item  
Symbol  
Condition  
Min.  
Typ.  
Max.  
Unit  
VOUT(S)  
VOUT(S)  
1.0 V  
1.5 V  
VOUT(S) < 1.5 V  
VOUT(S) 3.5 V  
VOUT(S)  
VOUT(S)  
V
1
0.015  
+
0.015  
V
IN = VOUT(S)  
+
+
1.0 V,  
1.0 V  
Output voltage*1  
Output current*2  
VOUT(E)  
IOUT = 30 mA  
VOUT(S)  
VOUT(S)  
V
1
×
0.99  
×
1.01  
1.0 V  
1.1 V  
1.2 V  
1.3 V  
1.4 V  
1.0 V  
1.1 V  
1.2 V  
1.3 V  
1.4 V  
1.5 V  
1.7 V  
1.8 V  
2.0 V  
2.5 V  
2.8 V  
3.0 V  
VOUT(S) < 1.1 V  
VOUT(S) < 1.2 V  
VOUT(S) < 1.3 V  
VOUT(S) < 1.4 V  
100*5  
1.55  
1.39  
1.25  
1.11  
0.99  
0.85  
0.68  
0.58  
0.49  
0.38  
0.33  
0.32  
mA  
mA  
mA  
mA  
mA  
V
V
V
V
V
V
V
V
V
V
V
V
3
3
3
3
3
1
1
1
1
1
1
1
1
1
1
1
1
125*5  
IOUT  
VIN  
VOUT(S)  
150*5  
175*5  
VOUT(S)  
3.5 V  
200*5  
VOUT(S) < 1.1 V  
VOUT(S) < 1.2 V  
VOUT(S) < 1.3 V  
VOUT(S) < 1.4 V  
VOUT(S) < 1.5 V  
VOUT(S) < 1.7 V  
VOUT(S) < 1.8 V  
VOUT(S) < 2.0 V  
VOUT(S) < 2.5 V  
VOUT(S) < 2.8 V  
VOUT(S) < 3.0 V  
0.50  
0.76  
0.67  
0.58  
0.49  
0.43  
0.37  
0.31  
0.27  
0.23  
0.18  
0.17  
0.16  
Dropout voltage*3  
Vdrop  
IOUT = 100 mA  
VOUT(S)  
3.5 V  
VOUT(S)  
IOUT = 1  
+
0.5 V  
VIN  
VIN  
5.5 V,  
5.5 V,  
1.0 V  
VOUT(S)  
3.5 V  
0.05  
0.2  
%/V  
1
μA  
ΔVOUT1  
1.0 V  
1.1 V  
1.2 V  
VOUT(S) < 1.1 V  
VOUT(S) < 1.2 V  
0.07  
0.06  
0.05  
2.0  
1.0  
0.2  
%/V  
%/V  
%/V  
1
1
1
Line regulation  
Load regulation  
ΔVINVOUT VOUT(S)  
+
0.5 V  
IOUT = 30 mA  
VOUT(S)  
3.5 V  
V
1
IN = VOUT(S) 1.0 V,  
+
1.0 V  
VOUT(S)  
3.5 V  
20  
40  
mV  
1
μA  
IOUT 100 mA  
1.0 V  
1.1 V  
1.2 V  
1.3 V  
1.4 V  
VOUT(S) < 1.1 V  
VOUT(S) < 1.2 V  
VOUT(S) < 1.3 V  
VOUT(S) < 1.4 V  
40  
40  
40  
40  
40  
640  
400  
160  
80  
mV  
mV  
mV  
mV  
mV  
1
1
1
1
1
ΔVOUT2  
VIN = VOUT(S) 1.0 V,  
100 IOUT 200 mA  
+
μA  
VOUT(S)  
3.5 V  
80  
ΔVOUT  
ΔTaVOUT  
V
IN = VOUT(S)  
+ 1.0 V, IOUT = 30 mA,  
Output voltage temperature coefficient*4  
130  
ppm/  
°
C
1
40 Ta ≤ +105°C  
°
C
Current consumption during operation  
Current consumption during power-off  
Input voltage  
ISS1  
ISS2  
VIN  
VIN = VOUT(S)  
VIN = VOUT(S)  
+
+
1.0 V, ON / OFF pin = ON, no load  
1.0 V, ON / OFF pin = OFF, no load  
1.5  
0.9  
0.01  
1.35  
0.1  
5.5  
μ
A
2
2
μA  
V
V
IN = VOUT(S)  
+
1.0 V, RL = 1.0 kΩ,  
ON / OFF pin input voltage "H"  
ON / OFF pin input voltage "L"  
VSH  
VSL  
ISH  
1.0  
V
V
4
determined by VOUT output level  
V
determined by VOUT output level  
IN = VOUT(S)  
+ 1.0 V, RL = 1.0 kΩ,  
0.25  
4
B / D type (without constant current source pull-down)  
A / C type (with constant current source pull-down)  
0.1  
0.1  
0.1  
0.2  
0.1  
μ
μ
μ
A
A
A
4
4
4
3
VIN = 5.5 V,  
VON / OFF = 5.5 V  
ON / OFF pin input current "H"  
ON / OFF pin input current "L"  
0.05  
ISL  
VIN = 5.5 V, VON / OFF = 0 V  
VIN = VOUT(S) 1.0 V, ON / OFF pin = ON, VOUT = 0 V  
0.1  
Short-circuit current  
Thermal shutdown detection  
temperature  
Thermal shutdown release temperature TSR  
Discharge shunt resistance  
Ishort  
+
50  
mA  
TSD  
Junction temperature  
150  
120  
35  
°
°
C
C
3
Junction temperature  
VOUT = 0.1 V, A / B type  
VIN = 5.5 V  
RLOW  
Ω
during power-off  
(with discharge shunt function)  
9
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
*1. VOUT(S): Set output voltage  
VOUT(E): Actual output voltage  
The output voltage when VIN = VOUT(S) + 1.0 V, IOUT = 30 mA  
*2. The output current at which the output voltage becomes 95% of VOUT(E) after gradually increasing the output current.  
*3. Vdrop = VIN1 (VOUT3 × 0.98)  
VIN1 is the input voltage at which the output voltage becomes 98% of VOUT3 after gradually decreasing the input  
voltage.  
VOUT3 is the output voltage when VIN = VOUT(S) + 1.0 V and IOUT = 100 mA.  
*4. A change in the temperature of the output voltage [mV/°C] is calculated using the following equation.  
ΔVOUT  
ΔTa  
ΔVOUT  
ΔTaVOUT  
mV/°C *1 = VOUT(S) V *2  
×
ppm/°C *3 ÷ 1000  
[ ]  
[
]
[ ]  
*1. Change in temperature of output voltage  
*2. Set output voltage  
*3. Output voltage temperature coefficient  
*5. Due to limitation of the power dissipation, this value may not be satisfied. Attention should be paid to the power  
dissipation when the output current is large.  
This specification is guaranteed by design.  
10  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Test Circuits  
+
VOUT  
VSS  
VIN  
A
+
ON / OFF  
V
Set to ON  
Figure 9 Test Circuit 1  
+
A
VOUT  
VIN  
ON / OFF  
VSS  
Set to VIN or GND  
Figure 10 Test Circuit 2  
VOUT  
A
VIN  
+
ON / OFF  
V
VSS  
Set to VIN or GND  
Figure 11 Test Circuit 3  
VOUT  
VSS  
VIN  
+
+
ON / OFF  
A
V
RL  
Figure 12 Test Circuit 4  
11  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Standard Circuit  
Input  
CIN  
Output  
VIN  
VOUT  
*1  
*2  
ON / OFF  
CL  
VSS  
Single GND  
GND  
*1.  
CIN is a capacitor for stabilizing the input.  
*2. CL is a capacitor for stabilizing the output.  
Figure 13  
Caution The above connection diagram and constants will not guarantee successful operation. Perform  
thorough evaluation including the temperature characteristics with an actual application to set the  
constants.  
Condition of Application  
Input capacitor (CIN):  
Output capacitor (CL):  
A ceramic capacitor with capacitance of 0.1 μF or more is recommended.  
A ceramic capacitor with capacitance of 0.1 μF or more is recommended.  
Caution Generally, in a voltage regulator, an oscillation may occur depending on the selection of the external  
parts. Perform thorough evaluation including the temperature characteristics with an actual  
application using the above capacitors to confirm no oscillation occurs.  
Selection of Input Capacitor (CIN) and Output Capacitor (CL)  
The S-1313xxxH Series requires CL between the VOUT pin and the VSS pin for phase compensation. The operation is  
stabilized by a ceramic capacitor with capacitance of 0.1 μF or more. When using an OS capacitor, a tantalum capacitor  
or an aluminum electrolytic capacitor, the capacitance also must be 0.1 μF or more. However, an oscillation may occur  
depending on the equivalent series resistance (ESR).  
Moreover, the S-1313xxxH Series requires CIN between the VIN pin and the VSS pin for a stable operation.  
Generally, an oscillation may occur when a voltage regulator is used under the conditon that the impedance of the power  
supply is high.  
Note that the output voltage transient characteristics vary depending on the capacitance of CIN and CL and the value of  
ESR.  
Caution Perform thorough evaluation including the temperature characteristics with an actual application to  
select CIN and CL.  
12  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Explanation of Terms  
1. Low dropout voltage regulator  
This is a voltage regulator which made dropout voltage small by its built-in low on-resistance output transistor.  
2. Output voltage (VOUT  
)
This voltage is output at an accuracy of 1.0% or 15 mV*2 when the input voltage, the output current and the  
temperature are in a certain condition*1.  
*1. Differs depending on the product.  
*2. When VOUT < 1.5 V: 15 mV, when VOUT 1.5 V: 1.0%  
Caution If the certain condition is not satisfied, the output voltage may exceed the accuracy range of  
1.0% or 15 mV. Refer to Table 13 in "Electrical Characteristics" for details.  
ΔVOUT1  
ΔVIN VOUT  
3. Line regulation  
Indicates the dependency of the output voltage on the input voltage. That is, the values show how much the output  
voltage changes due to a change in the input voltage with the output current remaining unchanged.  
4. Load regulation (ΔVOUT2  
)
Indicates the dependency of the output voltage on the output current. That is, the values show how much the output  
voltage changes due to a change in the output current with the input voltage remaining unchanged.  
5. Dropout voltage (Vdrop  
)
Indicates the difference between input voltage (VIN1) and the output voltage when the output voltage becomes 98% of  
the output voltage value (VOUT3) at VIN = VOUT(S) + 1.0 V after the input voltage (VIN) is decreased gradually.  
Vdrop = VIN1 (VOUT3 × 0.98)  
13  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
ΔVOUT  
ΔTa VOUT  
6. Output voltage temperature coefficient  
The shaded area in Figure 14 is the range where VOUT varies in the operation temperature range when the output  
voltage temperature coefficient is 130 ppm/°C.  
Example of S-1313A10H typ. product  
VOUT  
[V]  
+0.13 mV/°C  
*1  
VOUT(E)  
0.13 mV/°C  
40  
+25  
+105  
Ta [°C]  
*1.  
V
OUT(E) is the value of the output voltage measured at Ta = +25°C.  
Figure 14  
A change in the temperature of the output voltage [mV/°C] is calculated using the following equation.  
ΔVOUT  
ΔTa  
ΔVOUT  
ΔTa VOUT  
mV/°C *1 = VOUT(S) V *2  
×
ppm/°C *3 ÷ 1000  
[ ]  
[
]
[ ]  
*1. Change in temperature of output voltage  
*2. Set output voltage  
*3. Output voltage temperature coefficient  
14  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Operation  
1. Basic operation  
Figure 15 shows the block diagram of the S-1313xxxH Series to describe the basic operation.  
The error amplifier compares the feedback voltage (Vfb) whose output voltage (VOUT) is divided by the feedback  
resistors (Rs and Rf) with the reference voltage (Vref). The error amplifier controls the output transistor, consequently,  
the regulator starts the operation that keeps VOUT constant without the influence of the input voltage (VIN).  
VIN  
*1  
Current  
supply  
Error  
amplifier  
VOUT  
+
Vref  
Rf  
Vfb  
Reference voltage  
circuit  
Rs  
VSS  
*1. Parasitic diode  
Figure 15  
2. Output transistor  
In the S-1313xxxH Series, a low on-resistance P-channel MOS FET is used between the VIN pin and the VOUT pin  
as the output transistor. In order to hold VOUT constant, the on-resistance of the output transistor varies appropriately  
according to the output current (IOUT).  
Caution Since a parasitic diode exists between the VIN pin and the VOUT pin due to the structure of the  
transistor, the IC may be damaged by a reverse current if VOUT becomes higher than VIN. Therefore,  
be sure that VOUT does not exceed VIN + 0.3 V.  
15  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
3. ON / OFF pin  
The ON / OFF pin controls the internal circuit and the output transistor in order to start and stop the regulator. When the  
ON / OFF pin is set to OFF, the internal circuit stops operating and the output transistor between the VIN pin and the  
VOUT pin is turned off, reducing current consumption significantly.  
Note that the current consumption increases when a voltage of 0.25 V to VIN 0.3 V is applied to the ON / OFF pin.  
The ON / OFF pin is configured as shown in Figure 16 and Figure 17.  
3. 1 S-1313xxxH Series A / C type  
The ON / OFF pin is internally pulled down to the VSS pin in the floating status, so the VOUT pin is set to the VSS  
level.  
For the ON / OFF pin current, refer to the A / C type of the ON / OFF pin input current "H" in "Electrical  
Characteristics".  
3. 2 S-1313xxxH Series B / D type  
The ON / OFF pin is not internally pulled down to the VSS pin, so do not use it in the floating status. When not using  
the ON / OFF pin, connect it to the VIN pin.  
Table 14  
Product Type  
A / B / C / D  
ON / OFF Pin  
"H": ON  
"L": OFF  
Internal Circuit  
Operate  
Stop  
VOUT Pin Voltage  
Constant value*1  
Current Consumption  
*2  
ISS1  
*3  
A / B / C / D  
Pulled down to VSS  
ISS2  
*1. The constant value is output due to the regulating based on the set output voltage value.  
*2. Note that the IC's current consumption increases as much as current flows into the constant current of 0.1 μA  
typ. when the ON / OFF pin is connected to the VIN pin and the S-1313xxxH Series A / C type is operating.  
(refer to Figure 16).  
*3. The VOUT pin voltage of the S-1313xxxH Series A / B type is pulled down to VSS due to combined resistance  
(RLOW = 35 Ω typ.) of the discharge shunt circuit and the feedback resistors, and a load.  
VIN  
VIN  
ON / OFF  
ON / OFF  
VSS  
VSS  
Figure 16 S-1313xxxH Series A / C type  
Figure 17 S-1313xxxH Series B / D type  
16  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
4. Discharge shunt function (S-1313xxxH Series A / B type)  
The S-1313xxxH Series A / B type has a built-in discharge shunt circuit to discharge the output capacitance.  
The output capacitance is discharged as follows so that the VOUT pin reaches the VSS level.  
(1) The ON / OFF pin is set to OFF level.  
(2) The output transistor is turned off.  
(3) The discharge shunt circuit is turned on.  
(4) The output capacitor discharges.  
Since the S-1313xxxH Series C / D type does not have a discharge shunt circuit, the VOUT pin is set to VSS level  
through several MΩ internal divided resistors between the VOUT pin and the VSS pin. The S-1313xxxH Series A / B  
type allows the VOUT pin to reach the VSS level rapidly due to the discharge shunt circuit.  
S-1313xxxH Series  
Output transistor: OFF  
*1  
VOUT  
VIN  
Discharge shunt circuit  
: ON  
Output  
capacitor  
*1  
(CL)  
ON / OFF  
ON / OFF circuit  
ON / OFF Pin: OFF  
Current flow  
GND  
VSS  
*1. Parasitic diode  
Figure 18  
5. Constant current source pull-down (S-1313xxxH Series A / C type)  
The ON / OFF pin is internally pulled down to the VSS pin in the floating status, so the VOUT pin is set to the VSS level.  
Note that the IC's current consumption increases as much as current flows into the constant current of 0.1 μA typ. when  
the ON / OFF pin is connected to the VIN pin and the S-1313xxxH Series A / C type is operating.  
17  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
6. Overcurrent protection circuit  
The S-1313xxxH Series has a built-in overcurrent protection circuit to limit the overcurrent of the output transistor.  
When the VOUT pin is shorted with the VSS pin, that is, at the time of the output short-circuit, the output current is  
limited to 50 mA typ. due to the overcurrent protection circuit operation. The S-1313xxxH Series restarts regulating  
when the output transistor is released from the overcurrent status.  
Caution This overcurrent protection circuit does not work as for thermal protection. For example, when the  
output transistor keeps the overcurrent status long at the time of output short-circuit or due to other  
reasons, pay attention to the conditions of the input voltage and the load current so as not to  
exceed the power dissipation.  
7. Thermal shutdown circuit  
The S-1313xxxH Series has a built-in thermal shutdown circuit to limit overheating. When the junction temperature  
increases to 150°C typ., the thermal shutdown circuit becomes the detection status, and the regulating is stopped.  
When the junction temperature decreases to 120°C typ., the thermal shutdown circuit becomes the release status,  
and the regulator is restarted.  
If the thermal shutdown circuit becomes the detection status due to self-heating, the regulating is stopped and VOUT  
decreases. For this reason, the self-heating is limited and the temperature of the IC decreases. The thermal shutdown  
circuit becomes release status when the temperature of the IC decreases, and the regulating is restarted, thus the  
self-heating is generated again. Repeating this procedure makes the waveform of VOUT into a pulse-like form. This  
phenomenon continues unless decreasing either or both of the input voltage and the output current in order to reduce  
the internal power consumption, or decreasing the ambient temperature. Note that the product may suffer physical  
damage such as deterioration if the above phenomenon occurs continuously.  
Caution 1. When the heat radiation of the application is not in a good condition, the self-heating cannot be  
limited immediately, and the IC may suffer physical damage. Perform thorough evaluation  
including the temperature characteristics with an actual application to confirm no problems  
happen.  
2. If a large load current flows during the restart process of regulating after the thermal shutdown  
circuit changes to the release status from the detection status, the thermal shutdown circuit  
becomes the detection status again due to self-heating, and a problem may happen in the restart  
of regulating. A large load current, for example, occurs when charging to the CL whose  
capacitance is large.  
Perform thorough evaluation including the temperature characteristics with an actual application  
to select CL.  
Table 15  
Thermal Shutdown Circuit  
VOUT Pin Voltage  
Constant value*2  
Pulled down to VSS  
Release: 120°C typ.*1  
Detection: 150°C typ.*1  
*3  
*1. Junction temperature  
*2. The constant value is output due to the regulating based on the set output voltage value.  
*3. The VOUT pin voltage is pulled down to VSS due to the feedback resistors (Rs and Rf) and a load.  
18  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
8. Thermal shutdown circuit stop function  
The S-1313xxxH Series has a thermal shutdown circuit stop function during low load current.  
When the load current is approx. 0.2 mA or less, the current that flows in the thermal shutdown circuit is stopped and  
the thermal shutdown circuit stops operating. This makes the super low current consumption operation possible.  
When the load current is approx. 0.5 mA or more, a current is applied to the thermal shutdown circuit, thus making the  
protection operation possible.  
7.0  
6.0  
Operation at super low current consumption  
5.0  
4.0  
3.0  
2.0  
Thermal shutdown circuit operating  
1.0  
0
0
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
I
OUT [mA]  
Figure 19  
19  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Precautions  
Generally, when a voltage regulator is used under the condition that the load current value is small (10 μA or less), the  
output voltage may increase due to the leakage current of an output transistor.  
Generally, when a voltage regulator is used under the condition that the temperature is high, the output voltage may  
increase due to the leakage current of an output transistor.  
Generally, when the ON / OFF pin is used under the condition of OFF, the output voltage may increase due to the  
leakage current of an output transistor.  
Generally, when a voltage regulator is used under the condition that the impedance of the power supply is high, an  
oscillation may occur. Perform thorough evaluation including the temperature characteristics with an actual application  
to select CIN.  
Generally, in a voltage regulator, an oscillation may occur depending on the selection of the external parts. The  
following use conditions are recommended in the S-1313xxxH Series, however, perform thorough evaluation including  
the temperature characteristics with an actual application to select CIN and CL.  
Input capacitor (CIN):  
A ceramic capacitor with capacitance of 0.1 μF or more is recommended.  
Output capacitor (CL): A ceramic capacitor with capacitance of 0.1 μF or more is recommended.  
Ringing may occur when these three conditions below are satisfied. Before selecting an input capacitor, be sure to  
evaluate sufficiently under the actual usage conditions, including the temperature characteristics.  
The power supply inductance is high.  
The load current is 100 mA or more.  
The difference between the input voltage and the output voltage is close to the value of dropout voltage.  
Generally, in a voltage regulator, the values of an overshoot and an undershoot in the output voltage vary depending  
on the variation factors of input voltage start-up, input voltage fluctuation and load fluctuation etc., or the capacitance of  
CIN or CL and the value of the equivalent series resistance (ESR), which may cause a problem to the stable operation.  
Perform thorough evaluation including the temperature characteristics with an actual application to select CIN and CL.  
Generally, in a voltage regulator, an overshoot may occur in the output voltage momentarily if the input voltage steeply  
changes when the input voltage is started up or the input voltage fluctuates etc. Perform thorough evaluation including  
the temperature characteristics with an actual application to confirm no problems happen.  
Generally, in a voltage regulator, if the VOUT pin is steeply shorted with GND, a negative voltage exceeding the  
absolute maximum ratings may occur in the VOUT pin due to resonance phenomenon of the inductance and the  
capacitance including CL on the application. The resonance phenomenon is expected to be weakened by inserting a  
series resistor into the resonance path, and the negative voltage is expected to be limited by inserting a protection  
diode between the VOUT pin and the VSS pin.  
If the input voltage is started up steeply under the condition that the capacitance of CL is large, the thermal shutdown  
circuit may be in the detection status by self-heating due to the charge current to CL.  
Make sure of the conditions for the input voltage, output voltage and the load current so that the internal loss does not  
exceed the power dissipation.  
Do not apply an electrostatic discharge to this IC that exceeds the performance ratings of the built-in electrostatic  
protection circuit.  
When considering the output current value that the IC is able to output, make sure of the output current value specified  
in Table 13 in "Electrical Characteristics" and footnote *5 of the table.  
Wiring patterns on the application related to the VIN pin, the VOUT pin and the VSS pin should be designed so that the  
impedance is low. When mounting CIN between the VIN pin and the VSS pin and CL between the VOUT pin and the  
VSS pin, connect the capacitors as close as possible to the respective destination pins of the IC.  
In the package equipped with heat sink of backside, mount the heat sink firmly. Since the heat radiation differs  
according to the condition of the application, perform thorough evaluation with an actual application to confirm no  
problems happen.  
ABLIC Inc. claims no responsibility for any disputes arising out of or in connection with any infringement by products  
including this IC of patents owned by a third party.  
20  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Characteristics (Typical Data)  
1. Output voltage vs. Output current (When load current increases) (Ta = +25°C)  
1. 1 VOUT = 1.0 V  
1. 2 VOUT = 2.5 V  
1.2  
1.0  
0.8  
3.0  
2.5  
V
IN = 3.0 V  
V
IN = 2.0 V  
V
IN = 4.5 V  
2.0  
1.5  
1.0  
0.5  
0
V
IN = 2.8 V  
V
IN = 1.3 V  
0.6  
0.4  
0.2  
0
V
IN = 3.0 V  
V
IN = 5.5 V  
V
IN = 3.5 V  
V
IN = 5.5 V  
V
IN = 1.5 V  
300  
0
100  
200  
400 500  
0
100  
200  
300  
400 500  
IOUT [mA]  
IOUT [mA]  
1. 3 VOUT = 3.5 V  
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0
Remark In determining the output current, attention should  
V
V
V
V
IN = 3.8 V  
IN = 4.0 V  
IN = 4.5 V  
IN = 5.5 V  
be paid to the following.  
1. The minimum output current value and  
footnote *5 in Table 13 in "Electrical  
Characteristics"  
2. The power dissipation  
0
100  
200  
300  
400  
500  
IOUT [mA]  
2. Output voltage vs. Input voltage (Ta = +25°C)  
2. 1 VOUT = 1.0 V  
2. 2 VOUT = 2.5 V  
1.2  
1.1  
1.0  
2.7  
2.6  
2.5  
2.4  
I
OUT = 1 mA  
I
OUT = 1 mA  
0.9  
0.8  
0.7  
0.6  
I
I
OUT = 30 mA  
OUT = 50 mA  
2.3  
2.2  
2.1  
2.0  
I
OUT = 30 mA  
I
OUT = 50 mA  
I
OUT = 100 mA  
I
OUT = 100 mA  
0.6  
1.0  
1.4  
1.8 2.2  
2.6  
2.0  
2.5  
3.0  
3.5  
4.0  
4.5  
V
IN [V]  
VIN [V]  
2. 3 VOUT = 3.5 V  
3.7  
3.6  
3.5  
3.4  
3.3  
3.2  
3.1  
3.0  
I
OUT = 1 mA  
I
OUT = 30 mA  
OUT = 50 mA  
I
I
OUT = 100 mA  
3.0  
3.5  
4.0 4.5  
5.0  
5.5  
V
IN [V]  
21  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
3. Dropout voltage vs. Output current  
3. 1 VOUT = 1.0 V  
3. 2 VOUT = 2.5 V  
1.4  
1.2  
1.0  
0.50  
0.45  
0.40  
0.35  
0.30  
0.25  
0.20  
0.15  
0.10  
0.05  
0
Ta =  
+105°C  
Ta =  
Ta = 25  
Ta = 40  
+105°C  
Ta = 25°C  
+
+
°C  
Ta =  
40°C  
0.8  
°C  
0.6  
0.4  
0.2  
0
0
25 50 75 100 125 150 175 200  
0
25 50 75 100 125 150 175 200  
I
OUT [mA]  
IOUT [mA]  
3. 3  
VOUT = 3.5 V  
0.50  
0.45  
0.40  
0.35  
0.30  
0.25  
0.20  
0.15  
0.10  
0.05  
0
Ta = +105  
Ta = 25  
Ta = 40  
°C  
+
°C  
°C  
0
25 50 75 100 125 150 175 200  
I
OUT [mA]  
4. Dropout voltage vs. Set output voltage  
1.2  
I
OUT = 200 mA  
OUT = 100 mA  
OUT = 50 mA  
OUT = 30 mA  
1.0  
0.8  
0.6  
0.4  
0.2  
0
I
I
I
I
OUT = 10 mA  
I
OUT = 1 mA  
OUT = 0.1 mA  
I
1.0  
1.5  
2.0  
2.5  
3.0  
3.5  
V
OUT(S) [V]  
22  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
5. Output voltage vs. Ambient temperature  
5. 1 VOUT = 1.0 V  
5. 2 VOUT = 2.5 V  
1.10  
1.05  
1.00  
0.95  
0.90  
2.7  
2.6  
2.5  
2.4  
2.3  
40  
25  
0
25  
50  
75  
105  
40  
25  
0
25  
50  
75  
105  
Ta [°C]  
Ta [°C]  
5. 3 VOUT = 3.5 V  
3.8  
3.7  
3.6  
3.5  
3.4  
3.3  
3.2  
40  
25  
0
25  
Ta [°C]  
50  
75  
105  
6. Current consumption vs. Input voltage  
6. 1 VOUT = 1.0 V  
6. 2 VOUT = 2.5 V  
2.00  
2.00  
1.75  
1.50  
1.25  
1.00  
0.75  
0.50  
0.25  
0
Ta = +105°C  
Ta = +105°C  
1.75  
1.50  
1.25  
1.00  
0.75  
0.50  
0.25  
0
Ta = +25°C  
Ta = +25°C  
Ta = 40°C  
Ta = 40°C  
0
1
2
3
4
5
6
0
1
2
3
4
5
6
VIN [V]  
VIN [V]  
6. 3 VOUT = 3.5 V  
2.00  
1.75  
1.50  
1.25  
1.00  
0.75  
0.50  
0.25  
0
Ta =  
+105°C  
Ta = 25°C  
+
Ta = 40°C  
0
1
2
3
4
5
6
VIN [V]  
23  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
7. Current consumption vs. Ambient temperature  
7. 1 VOUT = 1.0 V  
7. 2 VOUT = 2.5 V  
1.6  
1.4  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
1.6  
1.4  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
VIN = 5.5 V  
VIN = 5.5 V  
V
IN = 2.0 V  
VIN = 3.5 V  
40  
25  
0
25  
50  
75  
105  
40  
25  
0
25  
50  
75  
105  
Ta [°C]  
Ta [°C]  
7. 3 VOUT = 3.5 V  
1.8  
1.6  
1.4  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
VIN = 5.5 V  
V
IN = 4.5 V  
40  
25  
0
25  
50  
75  
105  
Ta [°C]  
8. Current consumption vs. Output current  
8. 1 VOUT = 1.0 V  
8. 2 VOUT = 2.5 V  
40  
35  
40  
35  
30  
25  
20  
15  
10  
5
V
IN = 2.0 V  
V
IN = 3.5 V  
30  
25  
20  
15  
10  
5
V
IN = 5.5 V  
VIN = 5.5 V  
0
0
0
40  
80  
120  
160  
200  
0
40  
80  
120  
160  
200  
IOUT [mA]  
IOUT [mA]  
8. 3 VOUT = 3.5 V  
40  
35  
30  
25  
20  
15  
10  
5
V
IN = 4.5 V  
V
IN = 5.5 V  
160  
0
0
40  
80  
120  
200  
IOUT [mA]  
24  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Reference Data  
1. Transient response characteristics when input (Ta = +25°C)  
1. 1 VOUT = 1.0 V  
IOUT = 1 mA, CIN = CL = 0.1  
μF, VIN = 2.0 V  
3.0 V, tr = tf = 5.0  
μs  
IOUT = 100 mA, CIN = CL = 0.1 μF, VIN = 2.0 V 3.0 V, tr = tf = 5.0 μs  
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0
1.6  
1.5  
1.4  
1.3  
1.2  
1.1  
1.0  
0.9  
0.8  
1.6  
1.5  
1.4  
1.3  
1.2  
1.1  
1.0  
0.9  
0.8  
V
IN  
V
IN  
V
OUT  
VOUT  
40 20  
0
20 40 60 80 100 120 140  
40 20  
0
20 40 60 80 100 120 140  
t [μs]  
t [μs]  
1. 2 VOUT = 2.5 V  
IOUT = 1 mA, CIN = CL = 0.1  
μF, VIN = 3.5 V  
4.5 V, tr = tf = 5.0  
μs  
IOUT = 100 mA, CIN = CL = 0.1 μF, VIN = 3.5 V 4.5 V, tr = tf = 5.0 μs  
5.5  
5.0  
4.5  
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
5.5  
5.0  
4.5  
4.0  
3.5  
3.0  
2.5  
2.0  
1.5  
3.1  
3.0  
2.9  
2.8  
2.7  
2.6  
2.5  
2.4  
2.3  
3.1  
3.0  
2.9  
2.8  
2.7  
2.6  
2.5  
2.4  
2.3  
V
IN  
V
IN  
V
OUT  
VOUT  
40 20  
0
20 40 60 80 100 120 140  
40 20  
0
20 40 60 80 100 120 140  
t [μs]  
t [μs]  
1. 3 VOUT = 3.5 V  
IOUT = 1 mA, CIN = CL = 0.1  
μF, VIN = 4.5 V  
5.5 V, tr = tf = 5.0  
μs  
IOUT = 100 mA, CIN = CL = 0.1 μF, VIN = 4.5 V 5.5 V, tr = tf = 5.0 μs  
6.5  
6.0  
5.5  
5.0  
4.5  
4.0  
3.5  
3.0  
2.5  
4.1  
4.0  
3.9  
3.8  
3.7  
3.6  
3.5  
3.4  
3.3  
6.5  
6.0  
5.5  
5.0  
4.5  
4.0  
3.5  
3.0  
2.5  
4.1  
4.0  
3.9  
3.8  
3.7  
3.6  
3.5  
3.4  
3.3  
V
IN  
V
IN  
VOUT  
V
OUT  
40 20  
0
20 40 60 80 100 120 140  
40 20  
0
20 40 60 80 100 120 140  
t [μs]  
t [μs]  
25  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
2. Transient response characteristics of load (Ta = +25°C)  
2. 1 VOUT = 1.0 V  
VIN = 2.0 V, CIN = CL = 0.1 μF, IOUT = 1 mA 50 mA  
VIN = 2.0 V, CIN = CL = 0.1 μF, IOUT = 50 mA 100 mA  
100  
50  
2.6  
2.2  
1.8  
1.4  
1.0  
0.6  
0.2  
150  
100  
50  
2.6  
2.2  
1.8  
1.4  
1.0  
0.6  
0.2  
I
OUT  
I
OUT  
0
0
50  
100  
150  
200  
V
OUT  
V
OUT  
50  
100  
150  
100 50  
0
50 100 150 200 250 300  
200 100  
0
100 200 300 400 500 600  
t [μs]  
t [μs]  
2. 2  
VOUT = 2.5 V  
VIN = 3.5 V, CIN = CL = 0.1 μF, IOUT = 1 mA 50 mA  
VIN = 3.5 V, CIN = CL = 0.1 μF, IOUT = 50 mA 100 mA  
100  
50  
150  
100  
50  
4.9  
4.3  
3.7  
3.1  
2.5  
1.9  
1.3  
3.7  
3.4  
3.1  
2.8  
2.5  
2.2  
1.9  
I
OUT  
IOUT  
0
50  
100  
150  
200  
0
V
OUT  
VOUT  
50  
100  
150  
0.4 0.2 0 0.2 0.4 0.6 0.8  
1
1.2 1.4  
200100 0 100 200 300 400 500 600 700  
t [μs]  
t [ms]  
2. 3 VOUT = 3.5 V  
VIN = 4.5 V, CIN = CL = 0.1 μF, IOUT = 1 mA 50 mA  
VIN = 4.5 V, CIN = CL = 0.1 μF, IOUT = 50 mA 100 mA  
100  
50  
150  
100  
50  
6.3  
5.6  
4.9  
4.2  
3.5  
2.8  
2.1  
4.7  
4.4  
4.1  
3.8  
3.5  
3.2  
2.9  
I
OUT  
IOUT  
0
50  
100  
150  
200  
0
V
OUT  
VOUT  
50  
100  
150  
0.4 0.2 0 0.2 0.4 0.6 0.8  
1
1.2 1.4  
200100 0 100 200 300 400 500 600 700  
t [μs]  
t [ms]  
26  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
3. Transient response characteristics of ON / OFF pin (Ta = +25°C)  
3. 1 VOUT = 1.0 V  
VIN = 2.0 V, CIN = CL = 0.1  
μF, IOUT = 1 mA, VON / OFF = 0 V  
2 V, tr = 1.0  
μs  
VIN = 2.0 V, CIN = CL = 0.1  
μF, IOUT = 100 mA, VON / OFF = 0 V  
2 V, tr = 1.0 μs  
2.5  
2.0  
1.5  
1.0  
0.5  
0
2.5  
2.0  
1.5  
1.0  
0.5  
0
4
4
VON / OFF  
VOUT  
V
ON / OFF  
OUT  
2
0
2
0
V
2  
4  
6  
8  
2  
4  
6  
8  
0.5  
0.5  
100  
0
100  
200  
300  
400  
100  
0
100  
200  
300  
400  
t [μs]  
t [μs]  
3. 2 VOUT = 2.5 V  
VIN = 3.5 V, CIN = CL = 0.1  
μF, IOUT = 100 mA, VON / OFF = 0 V  
3.5 V, tr = 1.0 μs  
VIN = 3.5 V, CIN = CL = 0.1  
μF, IOUT = 1 mA, VON / OFF = 0 V  
3.5 V, tr = 1.0 μs  
10  
8
10  
8
6
6
V
ON / OFF  
V
ON / OFF  
4
4
6
2
6
2
4
0
4
0
V
OUT  
V
OUT  
2
2
2  
4  
6  
2  
4  
6  
0
0
2  
2  
200  
0
200 400 600 800 1000  
200  
0
200 400 600 800 1000  
t [μs]  
t [μs]  
3. 3 VOUT = 3.5 V  
VIN = 4.5 V, CIN = CL = 0.1  
μF, IOUT = 100 mA, VON / OFF = 0 V  
4.5 V, tr = 1.0 μs  
VIN = 4.5 V, CIN = CL = 0.1  
μF, IOUT = 1 mA, VON / OFF = 0 V  
4.5 V, tr = 1.0 μs  
14  
12  
10  
8
14  
12  
10  
8
8
6
4
8
6
4
V
ON / OFF  
V
ON / OFF  
2
2
6
4
2
0
6
4
2
0
0
0
V
OUT  
V
OUT  
2  
4  
6  
8  
2  
4  
6  
8  
2  
2  
200  
0
200 400 600 800 1000  
200  
0
200 400 600 800 1000  
t [μs]  
t [μs]  
27  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
4. Output capacitance vs. Characteristics of discharge time (Ta = +25°C)  
1 μs  
VIN = VOUT + 1.0 V, IOUT = no load,  
VON / OFF = VOUT + 1.0 V VSS, tf = 1 μs  
VON / OFF  
1.4  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
V
V
V
OUT(S) = 1.0 V  
OUT(S) = 2.5 V  
OUT(S) = 3.5 V  
VSS  
tDSC  
VOUT  
0
2
4
6
8
10  
12  
VOUT × 10%  
CL [μF]  
VIN = VOUT + 1.0 V  
VON / OFF = VOUT + 1.0 V VSS  
Figure 20 S-1313xxxH Series A / B type  
(with discharge shunt function)  
Figure 21 Measurement Condition of Discharge Time  
5. Ripple rejection (Ta = +25°C)  
5. 1 VOUT = 1.0 V  
5. 2 VOUT = 2.5 V  
VIN = 2.0 V, CL = 0.1 μF  
VIN = 3.5 V, CL = 0.1 μF  
100  
90  
100  
90  
IOUT = 1 mA  
IOUT = 30 mA  
IOUT = 100 mA  
IOUT = 1 mA  
80  
70  
60  
50  
40  
30  
20  
10  
0
80  
70  
60  
50  
40  
30  
20  
10  
0
IOUT = 30 mA  
IOUT = 100 mA  
IOUT = 200 mA  
10  
100  
1k  
10k  
100k  
1M  
10  
100  
1k  
10k  
100k  
1M  
Frequency [Hz]  
Frequency [Hz]  
5. 3 VOUT = 3.5 V  
VIN = 4.5 V, CL = 0.1 μF  
100  
90  
80  
70  
60  
50  
40  
30  
20  
10  
0
I
I
I
I
OUT = 1 mA  
OUT = 30 mA  
OUT = 100 mA  
OUT = 200 mA  
10  
100  
1k  
10k  
100k  
1M  
Frequency [Hz]  
28  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
6. Example of equivalent series resistance vs. Output current characteristics (Ta = +25°C)  
CIN = CL = 0.1 μF  
100  
VIN  
VOUT  
CIN  
Stable  
S-1313xxxH  
Series  
*1  
CL  
ON / OFF  
VSS  
0
RESR  
0.01  
240  
I
OUT [mA]  
*1. CL: Murata Manufacturing Co., Ltd. GRM31CR72E104K (0.1 μF)  
Figure 22  
Figure 23  
29  
105°C OPERATION, 5.5 V INPUT, 200 mA VOLTAGE REGULATOR  
S-1313xxxH Series  
Rev.1.2_00  
Power Dissipation  
SOT-23-5  
SC-82AB  
T
j
= +125°C max.  
T
j
= +125°C max.  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
B
A
B
A
0
25  
50  
75  
100 125 150 175  
0
25  
50  
75  
100 125 150 175  
Ambient temperature (Ta) [°C]  
Ambient temperature (Ta) [°C]  
Board  
Power Dissipation (PD)  
Board  
Power Dissipation (PD)  
A
B
C
D
E
0.52 W  
A
B
C
D
E
0.42 W  
0.63 W  
0.49 W  
HSNT-4(1010)  
HSNT-4(0808)  
Tj  
= +125°C max.  
Tj = +125°C max.  
1.0  
0.8  
0.6  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
0.4  
B
B
A
A
0.2  
0.0  
0
25  
50  
75  
100 125 150 175  
0
25  
50  
75  
100 125 150 175  
Ambient temperature (Ta) [°C]  
Ambient temperature (Ta) [°C]  
Board  
Power Dissipation (PD)  
Board  
Power Dissipation (PD)  
A
B
C
D
E
0.26 W  
A
B
C
D
E
0.25 W  
0.32 W  
0.30 W  
30  
SOT-23-3/3S/5/6 Test Board  
No. SOT23x-A-Board-SD-2.0  
ABLIC Inc.  
SC-82AB Test Board  
No. SC82AB-A-Board-SD-1.0  
ABLIC Inc.  
HSNT-4(1010) Test Board  
No. HSNT4-B-Board-SD-1.0  
ABLIC Inc.  
HSNT-4(0808) Test Board  
No. HSNT4-A-Board-SD-1.0  
ABLIC Inc.  
2.9±0.2  
1.9±0.2  
4
5
+0.1  
-0.06  
1
2
3
0.16  
0.95±0.1  
0.4±0.1  
No. MP005-A-P-SD-1.3  
TITLE  
SOT235-A-PKG Dimensions  
MP005-A-P-SD-1.3  
No.  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
4.0±0.1(10 pitches:40.0±0.2)  
+0.1  
-0  
2.0±0.05  
0.25±0.1  
ø1.5  
+0.2  
-0  
4.0±0.1  
ø1.0  
1.4±0.2  
3.2±0.2  
3
4
2 1  
5
Feed direction  
No. MP005-A-C-SD-2.1  
TITLE  
SOT235-A-Carrier Tape  
MP005-A-C-SD-2.1  
No.  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
12.5max.  
9.0±0.3  
Enlarged drawing in the central part  
ø13±0.2  
(60°)  
(60°)  
No. MP005-A-R-SD-1.1  
TITLE  
SOT235-A-Reel  
MP005-A-R-SD-1.1  
No.  
ANGLE  
UNIT  
QTY.  
3,000  
mm  
ABLIC Inc.  
2.0±0.2  
1.3±0.2  
4
3
0.05  
+0.1  
-0.06  
0.16  
2
1
+0.1  
-0.05  
0.4  
+0.1  
-0.05  
0.3  
No. NP004-A-P-SD-2.0  
TITLE  
No.  
SC82AB-A-PKG Dimensions  
NP004-A-P-SD-2.0  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
2.0±0.05  
+0.1  
-0  
1.1±0.1  
ø1.5  
4.0±0.1  
4.0±0.1  
0.2±0.05  
ø1.05±0.1  
(0.7)  
2.2±0.2  
2
3
1
4
Feed direction  
No. NP004-A-C-SD-3.0  
SC82AB-A-Carrier Tape  
NP004-A-C-SD-3.0  
TITLE  
No.  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
12.5max.  
9.0±0.3  
Enlarged drawing in the central part  
ø13±0.2  
(60°)  
(60°)  
No. NP004-A-R-SD-1.1  
TITLE  
No.  
SC82AB-A-Reel  
NP004-A-R-SD-1.1  
QTY.  
ANGLE  
UNIT  
3,000  
mm  
ABLIC Inc.  
0.38±0.02  
0.65  
3
4
+0.05  
-0.02  
1
2
0.08  
1.00±0.04  
he heat sink of back side has different electric  
potential depending on the product.  
Confirm specifications of each product.  
Do not use it as the function of electrode.  
0.20±0.05  
No. PL004-A-P-SD-1.1  
TITLE  
HSNT-4-B-PKG Dimensions  
PL004-A-P-SD-1.1  
No.  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
4.0±0.05  
2.0±0.05  
+0.1  
-0  
ø1.5  
0.25±0.05  
+0.1  
-0  
ø0.5  
2.0±0.05  
0.5±0.05  
1.12±0.05  
2
3
1
4
Feed direction  
No. PL004-A-C-SD-2.0  
HSNT-4-B-Carrier Tape  
PL004-A-C-SD-2.0  
TITLE  
No.  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
+1.0  
- 0.0  
9.0  
11.4±1.0  
Enlarged drawing in the central part  
ø13±0.2  
(60°)  
(60°)  
No. PL004-A-R-SD-1.0  
HSNT-4-B-Reel  
PL004-A-R-SD-1.0  
TITLE  
No.  
QTY.  
10,000  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
Land Pattern  
0.30min.  
0.38~0.48  
0.38~0.48  
0.07  
0.65±0.02  
(1.02)  
Caution It is recommended to solder the heat sink to a board  
in order to ensure the heat radiation.  
PKG  
Metal Mask Pattern  
Aperture ratio  
Aperture ratio  
Caution  
Mask aperture ratio of the lead mounting part is 100%.  
Mask aperture ratio of the heat sink mounting part is 40%.  
Mask thickness: t0.10mm to 0.12 mm  
100%  
40%  
t0.10mm ~ 0.12 mm  
HSNT-4-B  
TITLE  
-Land Recommendation  
No. PL004-A-L-SD-2.0  
No.  
PL004-A-L-SD-2.0  
ANGLE  
UNIT  
mm  
ABLIC Inc.  
0.38±0.02  
0.40  
3
4
+0.05  
-0.02  
1
2
0.08  
0.80±0.04  
The heat sink of back side has different electric  
potential depending on the product.  
Confirm specifications of each product.  
Do not use it as the function of electrode.  
0.20±0.05  
No. PK004-A-P-SD-2.1  
TITLE  
HSNT-4-A-PKG Dimensions  
PK004-A-P-SD-2.1  
No.  
ANGLE  
mm  
UNIT  
ABLIC Inc.  
4.0±0.05  
2.0±0.05  
+0.1  
-0  
ø1.5  
0.25±0.05  
+0.1  
-0  
2.0±0.05  
ø0.5  
0.5±0.05  
0.93±0.05  
2
3
1
4
Feed direction  
No. PK004-A-C-SD-3.0  
HSNT-4-A-Carrier Tape  
PK004-A-C-SD-3.0  
TITLE  
No.  
ANGLE  
mm  
UNIT  
ABLIC Inc.  
+1.0  
- 0.0  
9.0  
11.4±1.0  
Enlarged drawing in the central part  
ø13±0.2  
(60°)  
(60°)  
No. PK004-A-R-SD-2.0  
HSNT-4-A-Reel  
TITLE  
No.  
PK004-A-R-SD-2.0  
ANGLE  
QTY.  
10,000  
mm  
UNIT  
ABLIC Inc.  
Land Pattern  
0.22min.  
0.27~0.32  
0.27~0.32  
0.05  
0.40±0.02  
(0.82)  
Caution It is recommended to solder the heat sink to a board  
in order to ensure the heat radiation.  
PKG  
Metal Mask Pattern  
Aperture ratio  
Aperture ratio  
Caution  
Mask aperture ratio of the lead mounting part is 100%.  
Mask aperture ratio of the heat sink mounting part is 40%.  
Mask thickness: t0.10mm to 0.12 mm  
100%  
40%  
t0.10mm ~ 0.12 mm  
HSNT-4-A  
TITLE  
-Land Recommendation  
No.  
PK004-A-L-SD-3.0  
ANGLE  
No. PK004-A-L-SD-3.0  
mm  
UNIT  
ABLIC Inc.  
Disclaimers (Handling Precautions)  
1. All the information described herein (product data, specifications, figures, tables, programs, algorithms and  
application circuit examples, etc.) is current as of publishing date of this document and is subject to change without  
notice.  
2. The circuit examples and the usages described herein are for reference only, and do not guarantee the success of  
any specific mass-production design.  
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by the reasons other than the products  
described herein (hereinafter "the products") or infringement of third-party intellectual property right and any other  
right due to the use of the information described herein.  
3. ABLIC Inc. is not liable for any losses, damages, claims or demands caused by the incorrect information described  
herein.  
4. Be careful to use the products within their ranges described herein. Pay special attention for use to the absolute  
maximum ratings, operation voltage range and electrical characteristics, etc.  
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by failures and / or accidents, etc. due to  
the use of the products outside their specified ranges.  
5. Before using the products, confirm their applications, and the laws and regulations of the region or country where they  
are used and verify suitability, safety and other factors for the intended use.  
6. When exporting the products, comply with the Foreign Exchange and Foreign Trade Act and all other export-related  
laws, and follow the required procedures.  
7. The products are strictly prohibited from using, providing or exporting for the purposes of the development of  
weapons of mass destruction or military use. ABLIC Inc. is not liable for any losses, damages, claims or demands  
caused by any provision or export to the person or entity who intends to develop, manufacture, use or store nuclear,  
biological or chemical weapons or missiles, or use any other military purposes.  
8. The products are not designed to be used as part of any device or equipment that may affect the human body, human  
life, or assets (such as medical equipment, disaster prevention systems, security systems, combustion control  
systems, infrastructure control systems, vehicle equipment, traffic systems, in-vehicle equipment, aviation equipment,  
aerospace equipment, and nuclear-related equipment), excluding when specified for in-vehicle use or other uses by  
ABLIC, Inc. Do not apply the products to the above listed devices and equipments.  
ABLIC Inc. is not liable for any losses, damages, claims or demands caused by unauthorized or unspecified use of  
the products.  
9. In general, semiconductor products may fail or malfunction with some probability. The user of the products should  
therefore take responsibility to give thorough consideration to safety design including redundancy, fire spread  
prevention measures, and malfunction prevention to prevent accidents causing injury or death, fires and social  
damage, etc. that may ensue from the products' failure or malfunction.  
The entire system in which the products are used must be sufficiently evaluated and judged whether the products are  
allowed to apply for the system on customer's own responsibility.  
10. The products are not designed to be radiation-proof. The necessary radiation measures should be taken in the  
product design by the customer depending on the intended use.  
11. The products do not affect human health under normal use. However, they contain chemical substances and heavy  
metals and should therefore not be put in the mouth. The fracture surfaces of wafers and chips may be sharp. Be  
careful when handling these with the bare hands to prevent injuries, etc.  
12. When disposing of the products, comply with the laws and ordinances of the country or region where they are used.  
13. The information described herein contains copyright information and know-how of ABLIC Inc. The information  
described herein does not convey any license under any intellectual property rights or any other rights belonging to  
ABLIC Inc. or a third party. Reproduction or copying of the information from this document or any part of this  
document described herein for the purpose of disclosing it to a third-party is strictly prohibited without the express  
permission of ABLIC Inc.  
14. For more details on the information described herein or any other questions, please contact ABLIC Inc.'s sales  
representative.  
15. This Disclaimers have been delivered in a text using the Japanese language, which text, despite any translations into  
the English language and the Chinese language, shall be controlling.  
2.4-2019.07  
www.ablic.com  

相关型号:

SI9130DB

5- and 3.3-V Step-Down Synchronous Converters

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9135LG-T1

SMBus Multi-Output Power-Supply Controller

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9135LG-T1-E3

SMBus Multi-Output Power-Supply Controller

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9135_11

SMBus Multi-Output Power-Supply Controller

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9136_11

Multi-Output Power-Supply Controller

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9130CG-T1-E3

Pin-Programmable Dual Controller - Portable PCs

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9130LG-T1-E3

Pin-Programmable Dual Controller - Portable PCs

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9130_11

Pin-Programmable Dual Controller - Portable PCs

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9137

Multi-Output, Sequence Selectable Power-Supply Controller for Mobile Applications

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9137DB

Multi-Output, Sequence Selectable Power-Supply Controller for Mobile Applications

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9137LG

Multi-Output, Sequence Selectable Power-Supply Controller for Mobile Applications

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY

SI9122E

500-kHz Half-Bridge DC/DC Controller with Integrated Secondary Synchronous Rectification Drivers

Warning: Undefined variable $rtag in /www/wwwroot/website_ic37/www.icpdf.com/pdf/pdf/index.php on line 217
-
VISHAY