MIC5202-5.0YM-TR [MICROCHIP]

Dual 100 mA Low-Dropout Regulator;
MIC5202-5.0YM-TR
型号: MIC5202-5.0YM-TR
厂家: MICROCHIP    MICROCHIP
描述:

Dual 100 mA Low-Dropout Regulator

光电二极管 输出元件 调节器
文件: 总22页 (文件大小:535K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
MIC5202  
Dual 100 mA Low-Dropout Regulator  
Features  
General Description  
• High Output Voltage Accuracy  
• Variety of Output Voltages  
The MIC5202 is a dual linear voltage regulator with low  
dropout voltage (typically 17 mV at light loads and  
210 mV at 100 mA), and low ground current (1 mA at  
100 mA per output). Ideal for battery-operated  
applications, the MIC5202 offers 1% output voltage  
accuracy and dual enable pins. The enable pins may  
be driven individually or tied directly to VIN. When the  
part is disabled, power consumption drops to nearly  
zero. The MIC5202 ground current increases slightly in  
dropout, which minimizes power consumption and  
increases battery life. Some key features include  
reversed battery protection, current-limit, and  
overtemperature protection.  
• Up to 100 mA of Continuous Output Current  
• Low Ground Current  
• Low Dropout Voltage  
• Excellent Line and Load Regulations  
• Extremely Low Temperature Coefficient  
• Current and Thermal Limit Protections  
• Reverse-Battery Protection  
• Zero-Off Mode Current  
• Logic-Controlled Electronic Shutdown  
• 8-Pin SOIC Package  
The MIC5202 is available in fixed output voltages in the  
small 8-pin SOIC package.  
Applications  
• Cell Phones  
• Laptop, Notebook, and Palmtop Computers  
• Battery-Powered Equipment  
• PCMCIA VCC and VPP Regulation/Switching  
• Barcode Scanners  
• SMPS Post-Regulator/DC-to-DC Modules  
• High-Efficiency Linear Power Supplies  
Typical Application Schematic  
MIC5202  
8-PIN SOIC  
U1  
MIC5202  
VOUT1  
VIN1  
EN1  
VOUT1  
VOUT2  
EN1  
EN2  
GND1  
VOUT2  
VIN2  
GND2  
EN2  
2016 Microchip Technology Inc.  
DS20005614A-page 1  
MIC5202  
1.0  
ELECTRICAL CHARACTERISTICS  
Absolute Maximum Ratings †  
Input Supply Voltage (VIN1, VIN2) ................................................................................................................ –20V to +60V  
Enable Input Voltage (EN1, EN2)................................................................................................................ –20V to +60V  
ESD Rating (Note 1)...................................................................................................................................ESD Sensitive  
Operating Ratings ‡  
Input Supply Voltage (VIN1, VIN2) ...............................................................................................................+2.5V to +26V  
Enable Input Voltage (EN1, EN2)....................................................................................................................... 0V to VIN  
† Notice: Stresses above those listed under “Absolute Maximum Ratings” may cause permanent damage to the device.  
This is a stress rating only and functional operation of the device at those or any other conditions above those indicated  
in the operational sections of this specification is not intended. Exposure to maximum rating conditions for extended  
periods may affect device reliability.  
‡ Notice: The device is not guaranteed to function outside its operating ratings.  
Note 1: Devices are ESD sensitive. Handling precautions recommended. Human body model, 1.5 kin series with  
100 pF.  
DS20005614A-page 2  
2016 Microchip Technology Inc.  
MIC5202  
TABLE 1-1:  
ELECTRICAL CHARACTERISTICS  
Electrical Characteristics: VIN = VOUT + 1V, COUT = 10 µF; IOUT = 1 mA; TJ = 25°C, bold values indicate –40°C ≤  
TJ +125°C; unless noted. Specifications are for one LDO. (Note 1).  
Parameters  
Sym.  
Min.  
Typ.  
Max.  
Units  
Conditions  
–1  
1
Output Voltage Accuracy  
VOUT  
%
–2  
2
Output Voltage Temperature  
Coefficient (Note 2)  
V  
/T  
40  
150  
ppm/°C  
%
OUT  
0.004  
0.10  
0.40  
0.16  
0.30  
VOUT  
VOUT  
/
/
Line Regulation  
VIN = VOUT + 1V to 26V  
0.04  
VOUT  
VOUT  
Load Regulation (Note 3)  
%
IOUT = 0.1 mA to 100 mA  
IOUT = 100 µA  
17  
130  
150  
180  
225  
I
OUT = 20 mA  
IOUT = 30 mA  
IOUT = 50 mA  
VIN  
VOUT  
Dropout Voltage (Note 4)  
mV  
µA  
µA  
µA  
350  
IOUT = 100 mA  
ISHUT-  
Ground Pin Current Shutdown  
Ground Pin Current (Note 5)  
Ground Pin Current in Dropout  
0.01  
VEN 0.7V (shutdown)  
VEN 2.0V, IOUT = 100 µA  
DOWN  
170  
270  
330  
500  
1200  
I
OUT = 20 mA  
IGND  
IOUT = 30 mA  
IOUT = 50 mA  
IOUT = 100 mA  
1500  
VIN = 0.5V less than VOUT  
,
IGNDDO  
270  
330  
IOUT = 100 µA  
Power Supply Rejection Ratio  
Short Circuit Current Limit  
PSRR  
ILIMIT  
75  
dB  
280  
mA  
VOUT = 0V  
VOUT  
PD  
/
Thermal Regulation (Note 6)  
Output Noise  
0.05  
100  
%/W  
µV  
en  
Note 1: Specification for packaged product only.  
2: Output voltage temperature coefficient is defined as the worst case voltage change divided by the tem-  
perature range.  
3: Load regulation is measured at a constant junction temperature using low duty cycle pulse testing. Parts  
are tested for load regulation in the load range from 0.1 mA to 100 mA. Changes in output voltage caused  
by heating effects are covered by the thermal regulation specification.  
4: Dropout voltage is defined as the input to output differential at which the output voltage drops 2% below its  
nominal value measured at 1V differential.  
5: Ground pin current is the regulator quiescent current plus pass transistor base current. The total current  
drawn from the supply is the sum of the load current plus the ground pin current.  
6: Thermal regulation is defined as the change in output voltage at a time “t” after a change in power dissipa-  
tion is applied, excluding load or line regulation effects. Specifications are for a 100 mA load pulse at  
VIN = 26V for t = 10 ms.  
2016 Microchip Technology Inc.  
DS20005614A-page 3  
MIC5202  
TABLE 1-1:  
ELECTRICAL CHARACTERISTICS (CONTINUED)  
Electrical Characteristics: VIN = VOUT + 1V, COUT = 10 µF; IOUT = 1 mA; TJ = 25°C, bold values indicate –40°C ≤  
TJ +125°C; unless noted. Specifications are for one LDO. (Note 1).  
Parameters  
Enable Input  
Sym.  
Min.  
Typ.  
Max.  
Units  
Conditions  
2.0  
0.7  
Logic-Low = Off  
Logic-High = On  
VEN 0.7V  
Enable Input Voltage  
Enable Input Current  
VEN  
V
IENL  
IENH  
Note 1: Specification for packaged product only.  
0.01  
8
µA  
50  
VEN 2.0V  
2: Output voltage temperature coefficient is defined as the worst case voltage change divided by the tem-  
perature range.  
3: Load regulation is measured at a constant junction temperature using low duty cycle pulse testing. Parts  
are tested for load regulation in the load range from 0.1 mA to 100 mA. Changes in output voltage caused  
by heating effects are covered by the thermal regulation specification.  
4: Dropout voltage is defined as the input to output differential at which the output voltage drops 2% below its  
nominal value measured at 1V differential.  
5: Ground pin current is the regulator quiescent current plus pass transistor base current. The total current  
drawn from the supply is the sum of the load current plus the ground pin current.  
6: Thermal regulation is defined as the change in output voltage at a time “t” after a change in power dissipa-  
tion is applied, excluding load or line regulation effects. Specifications are for a 100 mA load pulse at  
VIN = 26V for t = 10 ms.  
DS20005614A-page 4  
2016 Microchip Technology Inc.  
MIC5202  
TEMPERATURE SPECIFICATIONS  
Parameters  
Temperature Ranges  
Sym.  
Min.  
Typ.  
Max.  
Units  
Conditions  
Junction Operating Temperature  
Range  
TJ  
–40  
+125  
°C  
Note 1  
Storage Temperature  
TS  
–65  
+150  
+260  
°C  
°C  
Lead Temperature  
Soldering, 10s  
Package Thermal Resistances  
Thermal Resistance, SOIC 8-Ld  
JA  
63  
°C/W  
Note 1: The maximum allowable power dissipation is a function of ambient temperature, the maximum allowable  
junction temperature and the thermal resistance from junction to air (i.e., TA, TJ, JA). Exceeding the  
maximum allowable power dissipation will cause the device operating junction temperature to exceed the  
maximum +125°C rating. Sustained junction temperatures above +125°C can impact the device reliability.  
2016 Microchip Technology Inc.  
DS20005614A-page 5  
MIC5202  
2.0  
TYPICAL PERFORMANCE CURVES  
Note: The graphs and tables provided following this note are a statistical summary based on a limited number of  
samples and are provided for informational purposes only. The performance characteristics listed herein  
are not tested or guaranteed. In some graphs or tables, the data presented may be outside the specified  
operating range (e.g., outside specified power supply range) and therefore outside the warranted range.  
250  
200  
150  
100  
50  
10  
1
0
0.1  
0.01  
0.1  
1
10  
100  
1000  
0.01  
0.1  
1
10  
100  
OUTPUT CURRENT (mA)  
OUTPUT CURRENT (mA)  
FIGURE 2-1:  
Dropout Voltage vs. Output  
FIGURE 2-4:  
Ground Current vs. Output  
Current.  
Current.  
0.4  
0.3  
0.2  
0.1  
0
1.6  
1.4  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
IOUT = 100mA  
IOUT = 100mA  
IOUT = 1mA  
IOUT = 1mA  
-60  
-30  
0
30  
60  
90 120 150  
0
2
4
6
8
10  
TEMPERATURE (ºC)  
INPUT VOLTAGE (V)  
FIGURE 2-2:  
Dropout Voltage vs.  
FIGURE 2-5:  
Ground Current vs. Input  
Temperature.  
Voltage.  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0.0  
3.5  
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0.0  
IOUT = 100mA  
CIN = 2.2μF  
COUT = 4.7μF  
IOUT = 100μA, 1mA  
0
0.1  
0.2  
0.3  
0
2
4
6
8
10  
OUTPUT CURRENT (A)  
INPUT VOLTAGE (V)  
FIGURE 2-3:  
Dropout Characteristics.  
FIGURE 2-6:  
Output Voltage vs. Output  
Current.  
DS20005614A-page 6  
2016 Microchip Technology Inc.  
MIC5202  
0.30  
0.25  
0.20  
0.15  
3.6  
3.5  
3.4  
3.3  
3.2  
3.1  
3.0  
CIN = 2.2μF  
IOUT = 100μA  
IN = 2.2μF  
COUT = 4.7μF  
COUT = 4.7μF  
C
3 DEVICES:  
HI/AVG/LO  
CURVES APPLICABLE  
AT 100μA AND 100mA  
-60 -30  
0
30  
60  
90  
120 150  
-60 -30  
0
30  
60  
90 120 150  
TEMPERATURE (ºC)  
TEMPERATURE (ºC)  
FIGURE 2-7:  
Ground Current vs.  
FIGURE 2-10:  
Output Voltage vs.  
Temperature.  
Temperature (3.3V Version).  
1.5  
1.4  
1.3  
1.2  
1.1  
300  
280  
260  
240  
IOUT = 100mA  
CIN = 2.2μF  
C
OUT = 4.7μF  
220  
VOUT = 3.3V  
200  
180  
V
OUT = 0V  
160  
140  
120  
100  
(SHORT CIRCUIT)  
1.0  
-50  
0
50  
100  
150  
-60 -30  
0
30  
60  
90 120 150  
TEMPERATURE (ºC)  
TEMPERATURE (ºC)  
FIGURE 2-11:  
Temperature.  
Output Current vs.  
FIGURE 2-8:  
Temperature.  
Ground Current vs.  
3.30  
3.29  
3.28  
3.27  
3.26  
3.25  
3.24  
3.23  
3.22  
3.21  
3.20  
100  
50  
0
CIN = 2.2μF  
C
OUT = 4.7μF  
I
OUT = 1mA  
COUT = 4.7μF  
100  
0
-60 -30  
0
30  
60  
90 120 150  
0
5
10 15 20 25 30 35  
TEMPERATURE (ºC)  
TIME (ms)  
FIGURE 2-12:  
Temperature.  
Minimum Input Voltage vs.  
FIGURE 2-9:  
Version).  
Thermal Regulation (3.3V  
2016 Microchip Technology Inc.  
DS20005614A-page 7  
MIC5202  
120  
100  
80  
60  
40  
20  
0
300  
250  
200  
150  
100  
50  
CIN = 2.2μF  
OUT = 4.7μF  
VOUT = 3.3V  
ROUT = 33Ÿ  
C
0
1
2
3
4
5
6
7
0
1
2
3
4
5
6
7
8
9
10  
INPUT VOLTAGE (V)  
INPUT VOLTAGE (V)  
FIGURE 2-13:  
Short Circuit Current vs.  
FIGURE 2-16:  
Input Current vs. Input  
Input Voltage.  
Voltage (3.3V Version).  
20  
10  
0
10  
5
COUT = 1μF  
OUT = 1mA  
I
0
-10  
-20  
COUT = 4.7μF  
-5  
200  
100  
6
4
0
0
2
4
6
8
10  
0
0.2  
0.4  
0.6  
0.8  
TIME (ms)  
TIME (ms)  
FIGURE 2-14:  
Load Transient.  
FIGURE 2-17:  
Line Transient.  
20  
10  
0
15  
10  
5
COUT = 10μF  
IOUT = 1mA  
-10  
-20  
COUT = 47μF  
0
200  
100  
6
4
0
0
10  
20  
30  
40  
0
0.1 0.2 0.3 0.4 0.5 0.6  
TIME (ms)  
TIME (ms)  
FIGURE 2-15:  
Load Transient.  
FIGURE 2-18:  
Line Transient.  
DS20005614A-page 8  
2016 Microchip Technology Inc.  
MIC5202  
60  
50  
40  
30  
20  
10  
0
1000  
100  
10  
IOUT = 100μA  
IOUT = 1mA  
1
0.1  
ROUT = 66Ÿ  
IOUT = 100mA  
0.01  
0.001  
0
1
2
3
4
5
6
7
FREQUENCY (Hz)  
INPUT VOLTAGE (V)  
FIGURE 2-22:  
Output Impedance.  
FIGURE 2-19:  
Input Current vs. Input  
Voltage (3.3V Version).  
35  
30  
25  
20  
15  
10  
5
5
4
3
2
1
0
CIN = 2.2μF  
C
OUT = 4.7μF  
COUT = 4.7μF  
OUT = 1mA  
I
VEN = 5V  
2
0
VEN = 2V  
0
-5  
-60 -30  
0
30  
60  
90 120 150  
0
50 100 150 200 250 300  
TEMPERATURE (ºC)  
TIME (μs)  
FIGURE 2-23:  
vs. Temperature.  
Enable Current Threshold  
FIGURE 2-20:  
Version).  
Enable Transient (3.3V  
1.6  
1.4  
1.2  
1.0  
0.8  
0.6  
5
4
3
2
1
0
CIN = 2.2μF  
C
OUT = 4.7μF  
COUT = 4.7μF  
IOUT = 100mA  
ON  
OFF  
30  
2
0
0.4  
-60 -30  
0
60  
90 120 150  
0
50 100 150 200 250 300  
TIME (μs)  
Enable Transient (3.3V  
TEMPERATURE (ºC)  
Enable Voltage Threshold  
FIGURE 2-24:  
vs. Temperature.  
FIGURE 2-21:  
Version).  
2016 Microchip Technology Inc.  
DS20005614A-page 9  
MIC5202  
100  
80  
60  
40  
20  
0
IOUT = 100μA  
FREQUENCY (Hz)  
FIGURE 2-25:  
Ripple vs. Frequency.  
100  
80  
60  
40  
20  
0
IOUT = 1mA  
FREQUENCY (Hz)  
FIGURE 2-26:  
Ripple vs. Frequency.  
100  
80  
60  
40  
20  
0
IOUT = 100mA  
FREQUENCY (Hz)  
FIGURE 2-27:  
Ripple vs. Frequency.  
DS20005614A-page 10  
2016 Microchip Technology Inc.  
MIC5202  
3.0  
PIN DESCRIPTIONS  
The descriptions of the pins are listed in Table 3-1.  
Package Type  
MIC5202  
8-Pin SOIC (M)  
(Top View)  
VOUT1  
GND1  
1
2
3
8
7
6
5
VIN1  
EN1  
VIN2  
EN2  
VOUT2  
4
GND2  
TABLE 3-1:  
Pin Number  
PIN FUNCTION TABLE  
Pin Name  
Description  
1
2
3
4
5
VOUT1  
GND1  
VOUT2  
GND2  
EN2  
Output of regulator 1.  
Ground pin of LDO1.  
Output of regulator 2.  
Ground pin of LDO2.  
Enable input for LDO2. Active-high Input. Logic-high = On, logic-low = Off. Do not  
leave floating.  
6
7
VIN2  
EN1  
Voltage input for LDO2.  
Enable input for LDO1. Active-high Input. Logic-high = On, logic-low = Off. Do not  
leave floating.  
8
VIN1  
Voltage input for LDO1.  
2016 Microchip Technology Inc.  
DS20005614A-page 11  
MIC5202  
regulator and sends it to a “zero” off-mode-current  
state. In this state, current consumed by the regulator  
goes nearly to zero. Forcing the enable pin high  
enables the output voltage. The active-high enable pin  
typically consumes 8 µA of current and cannot be left  
4.0  
APPLICATION INFORMATION  
The MIC5202 is a dual linear voltage regulator with low  
dropout voltage and low ground current features. Ideal  
for battery-operated applications, the MIC5202 offers  
1% output voltage accuracy, two independent enable  
pins, reversed battery protection, short circuit current  
limit and overtemperature protection. When the  
MIC5202 is disabled, the ground pin current drops to  
sub-micro amp and prolongs the battery life.  
floating;  
a floating enable pin may cause an  
indeterminate state on the output.  
4.7  
Thermal Shutdown  
When the internal die temperature of MIC5202 reaches  
the limit, the internal driver is disabled until the die  
temperature falls.  
4.1  
Input Supply Voltage  
VIN1 and VIN2 provide power to each internal circuit and  
may be tied together.  
4.2  
Ground  
Both ground pins (pin 2 and 4) must be tied to the same  
ground potential when using a single power supply.  
4.3  
Input Capacitor  
A 1 µF tantalum or aluminum electrolytic capacitor  
should be placed close to each VIN pin if there is more  
than 10 inches of copper between the input and the  
capacitor, or if a battery is used as the supply.  
4.4  
Output Capacitor  
The MIC5202 requires an output capacitor of 1 µF or  
greater to maintain stability. Increasing the output  
capacitor leads to an improved transient response;  
however, the size and cost also increase. Most  
tantalum and aluminum electrolytic capacitors are  
adequate; film capacitors will work as well, but at a  
higher cost. Many aluminum electrolytics have  
electrolytes that freeze at –30°C, so tantalum  
capacitors are recommended for operations below  
–25°C. An equivalent series resistance (ESR) of 5or  
less with a resonance frequency above 500 kHz is  
recommended. The output capacitor value may be  
increased without limit.  
At lower output loads, a smaller output capacitor value  
is required for output stability. The capacitor can be  
reduced to 0.47 µF for current below 10 mA or 0.33 µF  
for current below 1 mA.  
4.5  
No-Load Stability  
Unlike many other voltage regulators, the MIC5202  
remains stable and in regulation with no load. This is  
especially important in CMOS RAM keep-alive  
applications.  
4.6  
Enable Input  
The MIC5202 features dual active-high enable pins  
that allow each regulator to be enabled and disabled  
independently. Forcing the enable pin low disables the  
DS20005614A-page 12  
2016 Microchip Technology Inc.  
MIC5202  
5.0  
5.1  
THERMAL CONSIDERATIONS  
Layout  
The MIC5202 (8-pin SOIC package) has the thermal  
characteristics shown in Table 5-1, when mounted on a  
single-layer copper-clad printed circuit board.  
TABLE 5-1:  
THERMAL CHARACTERISTIC  
CONSIDERATIONS  
PC Board Dielectric  
θJA  
FR4  
160°C/W  
120°C/W  
Ceramic  
Multi-layer boards with a dedicated ground plane, wide  
traces, and large supply bus lines provide better  
thermal conductivity.  
The “worst case” value of 160°C/W assumes no ground  
plane, minimum trace widths, and a FR4 material  
board.  
5.2  
Nominal Power Dissipation and  
Die Temperature  
At +25°C ambient temperature, the MIC5202 operates  
reliably at up to 625 mW when mounted in the “worst  
case” manner described in the previous section. At an  
ambient temperature of +55°C, the device can safely  
dissipate 440 mW. These power levels are equivalent  
to a die temperature of +125°C, which corresponds to  
the recommended maximum temperature for  
non-military grade silicon integrated circuits.  
2016 Microchip Technology Inc.  
DS20005614A-page 13  
MIC5202  
6.0  
6.1  
PACKAGING INFORMATION  
Package Marking Information  
8-Pin SOIC*  
Example  
XXXX  
XXYM  
YYWWC  
5202  
50YM  
1423C  
Legend: XX...X Product code or customer-specific information  
Y
Year code (last digit of calendar year)  
YY  
WW  
NNN  
Year code (last 2 digits of calendar year)  
Week code (week of January 1 is week ‘01’)  
Alphanumeric traceability code  
Pb-free JEDEC® designator for Matte Tin (Sn)  
This package is Pb-free. The Pb-free JEDEC designator (  
can be found on the outer packaging for this package.  
e
3
*
)
e
3
, , Pin one index is identified by a dot, delta up, or delta down (triangle  
mark).  
Note: In the event the full Microchip part number cannot be marked on one line, it will  
be carried over to the next line, thus limiting the number of available  
characters for customer-specific information. Package may or may not include  
the corporate logo.  
Underbar (_) symbol may not be to scale.  
DS20005614A-page 14  
2016 Microchip Technology Inc.  
MIC5202  
8-Pin SOIC Package Outline and Recommended Land Pattern  
Note: For the most current package drawings, please see the Microchip Packaging Specification located at  
http://www.microchip.com/packaging.  
2016 Microchip Technology Inc.  
DS20005614A-page 15  
MIC5202  
NOTES:  
DS20005614A-page 16  
2016 Microchip Technology Inc.  
MIC5202  
APPENDIX A: REVISION HISTORY  
Revision A (August 2016)  
• Converted Micrel document MIC5202 to Micro-  
chip data sheet DS20005614A.  
• Minor text changes throughout.  
2016 Microchip Technology Inc.  
DS20005614A-page 17  
MIC5202  
NOTES:  
DS20005614A-page 18  
2016 Microchip Technology Inc.  
MIC5202  
PRODUCT IDENTIFICATION SYSTEM  
To order or obtain information, e.g., on pricing or delivery, contact your local Microchip representative or sales office.  
Examples:  
PART NO.  
Device  
X.X  
X
XX  
X.X  
a) MIC5202-3.0YM:  
b) MIC5202-3.0YM-TR:  
c) MIC5202-3.3YM:  
d) MIC5202-3.3YM-TR:  
e) MIC5202-4.8YM:  
f) MIC5202-4.8YM-TR:  
g) MIC5202-5.0YM:  
h) MIC5202-5.0YM-TR:  
Dual 100 mA Low-Dropout  
Regulator, 3.0V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 95/Tube  
Output  
Voltage  
Media Type  
Temperature Package  
Device:  
MIC5202:  
Dual 100 mA Low-Dropout Regulator  
Dual 100 mA Low-Dropout  
Regulator, 3.0 Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 2,500/Reel  
Output Voltage:  
3.0  
3.3  
4.8  
5.0  
=
=
=
=
3.0V  
3.3V  
4.85V  
5.0V  
Dual 100 mA Low-Dropout  
Regulator, 3.3V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 95/Tube  
Temperature:  
Package:  
Y
=
=
=
–40°C to +125°C  
8-Pin SOIC  
Dual 100 mA Low-Dropout  
Regulator, 3.3V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 2,500/Reel  
M
Media Type:  
TR  
2,500/Reel  
95/Tube  
Dual 100 mA Low-Dropout  
Regulator, 4.85V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 95/Tube  
blank=  
Dual 100 mA Low-Dropout  
Regulator, 4.85V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 2,500/Reel  
Dual 100 mA Low-Dropout  
Regulator, 5.0V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 95/Tube  
Dual 100 mA Low-Dropout  
Regulator, 5.0V Voltage,  
–40°C to +125°C Temp. Range,  
8-Pin SOIC, 2,500/Reel  
2016 Microchip Technology Inc.  
DS20005614A-page 19  
MIC5202  
NOTES:  
DS20005614A-page 20  
2016 Microchip Technology Inc.  
Note the following details of the code protection feature on Microchip devices:  
Microchip products meet the specification contained in their particular Microchip Data Sheet.  
Microchip believes that its family of products is one of the most secure families of its kind on the market today, when used in the  
intended manner and under normal conditions.  
There are dishonest and possibly illegal methods used to breach the code protection feature. All of these methods, to our  
knowledge, require using the Microchip products in a manner outside the operating specifications contained in Microchip’s Data  
Sheets. Most likely, the person doing so is engaged in theft of intellectual property.  
Microchip is willing to work with the customer who is concerned about the integrity of their code.  
Neither Microchip nor any other semiconductor manufacturer can guarantee the security of their code. Code protection does not  
mean that we are guaranteeing the product as “unbreakable.”  
Code protection is constantly evolving. We at Microchip are committed to continuously improving the code protection features of our  
products. Attempts to break Microchip’s code protection feature may be a violation of the Digital Millennium Copyright Act. If such acts  
allow unauthorized access to your software or other copyrighted work, you may have a right to sue for relief under that Act.  
Information contained in this publication regarding device  
applications and the like is provided only for your convenience  
and may be superseded by updates. It is your responsibility to  
ensure that your application meets with your specifications.  
MICROCHIP MAKES NO REPRESENTATIONS OR  
WARRANTIES OF ANY KIND WHETHER EXPRESS OR  
IMPLIED, WRITTEN OR ORAL, STATUTORY OR  
OTHERWISE, RELATED TO THE INFORMATION,  
INCLUDING BUT NOT LIMITED TO ITS CONDITION,  
QUALITY, PERFORMANCE, MERCHANTABILITY OR  
FITNESS FOR PURPOSE. Microchip disclaims all liability  
arising from this information and its use. Use of Microchip  
devices in life support and/or safety applications is entirely at  
the buyer’s risk, and the buyer agrees to defend, indemnify and  
hold harmless Microchip from any and all damages, claims,  
suits, or expenses resulting from such use. No licenses are  
conveyed, implicitly or otherwise, under any Microchip  
intellectual property rights unless otherwise stated.  
Trademarks  
The Microchip name and logo, the Microchip logo, AnyRate,  
dsPIC, FlashFlex, flexPWR, Heldo, JukeBlox, KeeLoq,  
KeeLoq logo, Kleer, LANCheck, LINK MD, MediaLB, MOST,  
MOST logo, MPLAB, OptoLyzer, PIC, PICSTART, PIC32 logo,  
RightTouch, SpyNIC, SST, SST Logo, SuperFlash and UNI/O  
are registered trademarks of Microchip Technology  
Incorporated in the U.S.A. and other countries.  
ClockWorks, The Embedded Control Solutions Company,  
ETHERSYNCH, Hyper Speed Control, HyperLight Load,  
IntelliMOS, mTouch, Precision Edge, and QUIET-WIRE are  
registered trademarks of Microchip Technology Incorporated  
in the U.S.A.  
Analog-for-the-Digital Age, Any Capacitor, AnyIn, AnyOut,  
BodyCom, chipKIT, chipKIT logo, CodeGuard, dsPICDEM,  
dsPICDEM.net, Dynamic Average Matching, DAM, ECAN,  
EtherGREEN, In-Circuit Serial Programming, ICSP, Inter-Chip  
Connectivity, JitterBlocker, KleerNet, KleerNet logo, MiWi,  
motorBench, MPASM, MPF, MPLAB Certified logo, MPLIB,  
MPLINK, MultiTRAK, NetDetach, Omniscient Code  
Generation, PICDEM, PICDEM.net, PICkit, PICtail,  
PureSilicon, RightTouch logo, REAL ICE, Ripple Blocker,  
Serial Quad I/O, SQI, SuperSwitcher, SuperSwitcher II, Total  
Endurance, TSHARC, USBCheck, VariSense, ViewSpan,  
WiperLock, Wireless DNA, and ZENA are trademarks of  
Microchip Technology Incorporated in the U.S.A. and other  
countries.  
SQTP is a service mark of Microchip Technology Incorporated  
in the U.S.A.  
Microchip received ISO/TS-16949:2009 certification for its worldwide  
headquarters, design and wafer fabrication facilities in Chandler and  
Tempe, Arizona; Gresham, Oregon and design centers in California  
and India. The Company’s quality system processes and procedures  
are for its PIC® MCUs and dsPIC® DSCs, KEELOQ® code hopping  
devices, Serial EEPROMs, microperipherals, nonvolatile memory and  
analog products. In addition, Microchip’s quality system for the design  
and manufacture of development systems is ISO 9001:2000 certified.  
Silicon Storage Technology is a registered trademark of  
Microchip Technology Inc. in other countries.  
GestIC is a registered trademarks of Microchip Technology  
Germany II GmbH & Co. KG, a subsidiary of Microchip  
Technology Inc., in other countries.  
All other trademarks mentioned herein are property of their  
respective companies.  
QUALITYMANAGEMENTꢀꢀSYSTEMꢀ  
CERTIFIEDBYDNVꢀ  
© 2016, Microchip Technology Incorporated, Printed in the  
U.S.A., All Rights Reserved.  
ISBN: 978-1-5224-0891-8  
== ISO/TS16949==ꢀ  
2016 Microchip Technology Inc.  
DS20005614A-page 21  
Worldwide Sales and Service  
AMERICAS  
ASIA/PACIFIC  
ASIA/PACIFIC  
EUROPE  
Corporate Office  
2355 West Chandler Blvd.  
Chandler, AZ 85224-6199  
Tel: 480-792-7200  
Fax: 480-792-7277  
Technical Support:  
http://www.microchip.com/  
support  
Asia Pacific Office  
China - Xiamen  
Tel: 86-592-2388138  
Fax: 86-592-2388130  
Austria - Wels  
Tel: 43-7242-2244-39  
Fax: 43-7242-2244-393  
Suites 3707-14, 37th Floor  
Tower 6, The Gateway  
Harbour City, Kowloon  
China - Zhuhai  
Tel: 86-756-3210040  
Fax: 86-756-3210049  
Denmark - Copenhagen  
Tel: 45-4450-2828  
Fax: 45-4485-2829  
Hong Kong  
Tel: 852-2943-5100  
Fax: 852-2401-3431  
India - Bangalore  
Tel: 91-80-3090-4444  
Fax: 91-80-3090-4123  
France - Paris  
Tel: 33-1-69-53-63-20  
Fax: 33-1-69-30-90-79  
Australia - Sydney  
Tel: 61-2-9868-6733  
Fax: 61-2-9868-6755  
Web Address:  
www.microchip.com  
India - New Delhi  
Tel: 91-11-4160-8631  
Fax: 91-11-4160-8632  
Germany - Dusseldorf  
Tel: 49-2129-3766400  
Atlanta  
Duluth, GA  
Tel: 678-957-9614  
Fax: 678-957-1455  
China - Beijing  
Tel: 86-10-8569-7000  
Fax: 86-10-8528-2104  
Germany - Karlsruhe  
Tel: 49-721-625370  
India - Pune  
Tel: 91-20-3019-1500  
China - Chengdu  
Tel: 86-28-8665-5511  
Fax: 86-28-8665-7889  
Germany - Munich  
Tel: 49-89-627-144-0  
Fax: 49-89-627-144-44  
Austin, TX  
Tel: 512-257-3370  
Japan - Osaka  
Tel: 81-6-6152-7160  
Fax: 81-6-6152-9310  
Boston  
China - Chongqing  
Tel: 86-23-8980-9588  
Fax: 86-23-8980-9500  
Italy - Milan  
Tel: 39-0331-742611  
Fax: 39-0331-466781  
Westborough, MA  
Tel: 774-760-0087  
Fax: 774-760-0088  
Japan - Tokyo  
Tel: 81-3-6880- 3770  
Fax: 81-3-6880-3771  
China - Dongguan  
Tel: 86-769-8702-9880  
Italy - Venice  
Tel: 39-049-7625286  
Chicago  
Itasca, IL  
Tel: 630-285-0071  
Fax: 630-285-0075  
Korea - Daegu  
Tel: 82-53-744-4301  
Fax: 82-53-744-4302  
China - Guangzhou  
Tel: 86-20-8755-8029  
Netherlands - Drunen  
Tel: 31-416-690399  
Fax: 31-416-690340  
China - Hangzhou  
Tel: 86-571-8792-8115  
Fax: 86-571-8792-8116  
Korea - Seoul  
Cleveland  
Tel: 82-2-554-7200  
Fax: 82-2-558-5932 or  
82-2-558-5934  
Poland - Warsaw  
Tel: 48-22-3325737  
Independence, OH  
Tel: 216-447-0464  
Fax: 216-447-0643  
China - Hong Kong SAR  
Tel: 852-2943-5100  
Fax: 852-2401-3431  
Spain - Madrid  
Tel: 34-91-708-08-90  
Fax: 34-91-708-08-91  
Malaysia - Kuala Lumpur  
Tel: 60-3-6201-9857  
Fax: 60-3-6201-9859  
Dallas  
Addison, TX  
Tel: 972-818-7423  
Fax: 972-818-2924  
China - Nanjing  
Tel: 86-25-8473-2460  
Fax: 86-25-8473-2470  
Sweden - Stockholm  
Tel: 46-8-5090-4654  
Malaysia - Penang  
Tel: 60-4-227-8870  
Fax: 60-4-227-4068  
Detroit  
Novi, MI  
Tel: 248-848-4000  
UK - Wokingham  
Tel: 44-118-921-5800  
Fax: 44-118-921-5820  
China - Qingdao  
Tel: 86-532-8502-7355  
Fax: 86-532-8502-7205  
Philippines - Manila  
Tel: 63-2-634-9065  
Fax: 63-2-634-9069  
Houston, TX  
Tel: 281-894-5983  
China - Shanghai  
Tel: 86-21-5407-5533  
Fax: 86-21-5407-5066  
Singapore  
Tel: 65-6334-8870  
Fax: 65-6334-8850  
Indianapolis  
Noblesville, IN  
Tel: 317-773-8323  
Fax: 317-773-5453  
China - Shenyang  
Tel: 86-24-2334-2829  
Fax: 86-24-2334-2393  
Taiwan - Hsin Chu  
Tel: 886-3-5778-366  
Fax: 886-3-5770-955  
Los Angeles  
China - Shenzhen  
Tel: 86-755-8864-2200  
Fax: 86-755-8203-1760  
Mission Viejo, CA  
Tel: 949-462-9523  
Fax: 949-462-9608  
Taiwan - Kaohsiung  
Tel: 886-7-213-7828  
China - Wuhan  
Tel: 86-27-5980-5300  
Fax: 86-27-5980-5118  
Taiwan - Taipei  
Tel: 886-2-2508-8600  
Fax: 886-2-2508-0102  
New York, NY  
Tel: 631-435-6000  
San Jose, CA  
Tel: 408-735-9110  
China - Xian  
Tel: 86-29-8833-7252  
Fax: 86-29-8833-7256  
Thailand - Bangkok  
Tel: 66-2-694-1351  
Fax: 66-2-694-1350  
Canada - Toronto  
Tel: 905-695-1980  
Fax: 905-695-2078  
06/23/16  
DS20005614A-page 22  
2016 Microchip Technology Inc.  

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