LM9076BMAX-3.3 [TI]

LM9076 150mA Ultra-Low Quiescent Current LDO Regulator with Delayed Reset Output; LM9076 150毫安超低静态电流LDO稳压器,带有延迟复位输出
LM9076BMAX-3.3
型号: LM9076BMAX-3.3
厂家: TEXAS INSTRUMENTS    TEXAS INSTRUMENTS
描述:

LM9076 150mA Ultra-Low Quiescent Current LDO Regulator with Delayed Reset Output
LM9076 150毫安超低静态电流LDO稳压器,带有延迟复位输出

稳压器
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LM9076  
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SNVS260L NOVEMEBER 2003REVISED MARCH 2013  
LM9076 150mA Ultra-Low Quiescent Current LDO Regulator with Delayed Reset Output  
Check for Samples: LM9076  
1
FEATURES  
DESCRIPTION  
The LM9076 is a ±3%, 150 mA logic controlled  
voltage regulator. The regulator features an active  
low delayed reset output flag which can be used to  
reset a microprocessor system at turn-ON and in the  
event that the regulator output voltage falls below a  
minimum value. An external capacitor programs a  
delay time interval before the reset output pin can  
return high.  
2
Available with 5.0V or 3.3V Output Voltage  
Ultra Low Ground Pin Current, 25 μA Typical  
for 100 μA Load  
VOUT Initial Accuracy of ±1.5%  
VOUT Accurate to ±3% Over Load and  
Temperature Conditions  
Low Dropout Voltage, 200 mV Typical with 150  
mA Load  
Designed for automotive and industrial applications,  
the LM9076 contains a variety of protection features  
such as thermal shutdown, input transient protection  
Low Off State Ground Pin current for  
LM9076BMA  
and  
a wide operating temperature range. The  
Delayed RESET Output Pin for Low VOUT  
Detection  
LM9076 uses an PNP pass transistor which allows  
low drop-out voltage operation.  
+70V/-50V Voltage Transients  
Operational VIN up to +40V  
Typical Applications  
Unregulated  
Voltage Input  
Regulated  
Voltage Output  
V
IN  
V
OUT  
100 kW  
LM9076S-x.x  
Delayed Reset  
Output  
RESET  
C
DELAY  
0.1 mF  
GND  
C
IN  
C
OUT  
1.0 nF  
10 mF  
10 mF  
Figure 1. LM9076S-x.x in 5 lead SFM package  
Unregulated  
Voltage Input  
Regulated  
Voltage Output  
V
IN  
V
OUT  
100 kW  
LM9076BMA-x.x  
Delayed Reset  
Output  
Shutdown Control  
Input  
RESET  
SHUTDOWN  
ON  
OFF  
C
DELAY  
0.1 mF  
GND  
C
IN  
C
OUT  
1.0 nF  
10 mF  
10 mF  
Figure 2. LM9076BMA-x.x in 8 lead SOIC package  
1
Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of  
Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet.  
All trademarks are the property of their respective owners.  
2
PRODUCTION DATA information is current as of publication date.  
Products conform to specifications per the terms of the Texas  
Instruments standard warranty. Production processing does not  
necessarily include testing of all parameters.  
Copyright © 2003–2013, Texas Instruments Incorporated  
 
LM9076  
SNVS260L NOVEMEBER 2003REVISED MARCH 2013  
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Connection Diagram  
Figure 3. Top View  
Part Numbers LM9076S-3.3 and LM9076S-5.0  
See SFM Package Number KTT0005B  
Figure 4. Top View  
Part Numbers LM9076BMA-3.3 and  
LM9076BMA-5.0  
See SOIC Package Number D  
These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in conductive foam  
during storage or handling to prevent electrostatic damage to the MOS gates.  
Absolute Maximum Ratings(1)  
VIN(DC)  
-15V to +55V  
+70V  
VIN(+Transient) t< 10ms, Duty Cycle <1%  
VIN(-Transient) t< 1ms, Duty Cycle <1%  
SHUTDOWN Pin  
-50V  
-15V to +52V  
-0.3V to 20V  
-0.3V to VOUT +0.3V  
-65°C to +150°C  
+175C  
RESET Pin  
CDELAY Pin  
Storage Temperature  
Junction Temperature (TJ )  
ESD, HBM, per AEC - Q100 - 002  
ESD, MM, per AEC - Q100 - 003  
+/-2 kV  
+/-250V  
(1) Absolute Maximum Ratings indicate the limits beyond which the device may cease to function, and/or damage to the device may occur.  
Operating Ratings(1)(2)  
VIN Pin  
5.35V to 40V  
0V to 40V  
VSHUTDOWN Pin  
Junction Temperature  
Thermal Resistance KTT0005B(3)  
40°C < TJ < +125°C  
75°C/W  
θJA  
θJC  
θJA  
θJC  
2.9°C/W  
Thermal Resistance D(3)  
156°C/W  
59°C/W  
(1) Absolute Maximum Ratings indicate the limits beyond which the device may cease to function, and/or damage to the device may occur.  
(2) Operating Ratings indicate conditions for which the device is intended to be functional, but does not ensure specific performance limits.  
For ensured specifications and conditions refer to the Electrical Characteristics  
(3) Worst case (FREE AIR) per EIA/JESD51–3.  
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Electrical Characteristics for LM9076–3.3  
The following specifications apply for VIN = 14V; ILOAD = 10 mA; TJ = +25C; COUT = 10 μF, 0.5< ESR < 4.0; unless  
otherwise specified. Bold values indicate 40°C TJ +125°C.(1)(2)(3)Minimum and Maximum limits are specified through  
test, design or statistical correlation.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Units  
LM9076–3.3 REGULATOR CHARACTERISTICS  
3.251  
3.234  
3.201  
2.970  
3.30  
3.30  
3.30  
3.30  
3.349  
3.366  
3.399  
3.630  
V
V
V
V
20°C TJ 85°C  
1 mA ILOAD 150 mA  
Output Voltage  
1mA ILOAD 150 mA  
VIN = 60V,  
RLOAD = 1 k, t 40ms  
VOUT  
Output Voltage Off  
LM9076 BMA only  
VSHUTDOWN 2V,  
RLOAD = 1 kΩ  
300  
0
0
250  
mV  
mV  
mV  
mV  
VIN = -15V,  
RLOAD = 1 kΩ  
Reverse Battery  
9.0V VIN 16V,  
ILOAD = 10 mA  
4
25  
35  
Line Regulation  
ΔVOUT  
16V VIN 40V,  
ILOAD = 10 mA  
17  
Load Regulation  
1 mA ILOAD 150 mA  
ILOAD = 10 mA  
42  
30  
60  
50  
mV  
mV  
mV  
mV  
VDO  
Dropout Voltage  
ILOAD = 50 mA  
80  
ILOAD = 150 mA  
150  
250  
9V VIN 16V,  
ILOAD = 100 uA  
25  
125  
0.6  
3.6  
400  
45  
160  
μA  
μA  
9V VIN 40V,  
ILOAD = 10 mA  
IGND  
Ground Pin Current  
9V VIN 40V,  
ILOAD = 50 mA  
mA  
mA  
mA  
9V VIN 16V,  
ILOAD = 150 mA  
4.5  
750  
VOUT Short Circuit  
Current  
VIN = 14V,  
RLOAD = 1Ω  
ISC  
200  
VIN = (14VDC) + (1VRMS  
@ 120Hz)  
PSRR  
Ripple Rejection  
50  
60  
dB  
ILOAD = 50 mA  
RESET PIN CHARACTERISTICS  
Minimum VIN for valid  
RESET Status  
VOR  
VTHR  
VOH  
VOL  
(Note 3)  
(Note 3)  
1.3  
0.89  
2.0  
0.94  
VOUT  
0.3  
V
VOUT Threshold for  
RESET Low  
X VOUT  
(Nom)  
0.83  
VOUT X 0.90  
External pull-up resistor  
to VOUT = 100 kΩ  
RESET pin high voltage  
RESET pin low voltage  
VOUT X 0.99  
0.2  
V
V
CDELAY < 4.0V,  
ISINK = 250 µA  
(1) The regulated output voltage specification is not ensured for the entire range of VIN and output loads. Device operational range is limited  
by the maximum junction temperature (T J ). The junction temperature is influenced by the ambient temperature (T A ), package  
selection, input voltage (VIN ), and the output load current. When operating with maximum load currents the input voltage and/or ambient  
temperature will be limited. When operating with maximum input voltage the load current and/or the ambient temperature will be limited.  
(2) Pulse testing used maintain constant junction temperature (TJ ).  
(3) Not Production tested, Specified by Design. Minimum, Typical, and/or Maximum values are provided for informational purposes only.  
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Electrical Characteristics for LM9076–3.3 (continued)  
The following specifications apply for VIN = 14V; ILOAD = 10 mA; TJ = +25C; COUT = 10 μF, 0.5< ESR < 4.0; unless  
otherwise specified. Bold values indicate 40°C TJ +125°C.(1)(2)(3)Minimum and Maximum limits are specified through  
test, design or statistical correlation.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Units  
CDELAY PIN CHARACTERISTICS  
CDELAY Charging  
Current  
VIN = 14V,  
VDELAY = 0V  
IDELAY  
-0.70  
-0.42  
0.100  
-0.25  
uA  
V
VOUT < 4.0V,  
ISINK = IDELAY  
VOL  
CDELAY pin low voltage  
VIN = 14V, CDELAY  
0.001 uF  
=
tDELAY  
Reset Delay Time  
VOUT rising from 0V, Δt  
from VOUT > VOR to  
RESET pin HIGH  
4.7  
7.8  
13.2  
ms  
Electrical Characteristics for LM9076–5.0  
The following specifications apply for VIN= 14V; VSHUTDOWN = Open; ILOAD = 10 mA; TJ = +25°C; COUT = 10 µF, 0.5< ESR <  
4.0; unless otherwise specified. Bold Values indicate 40°C TJ 125°C.(1)(2)(3) Minimum and Maximum limits are  
specified through test, design, or statistical correlation.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Units  
LM9076–5.0 REGULATOR CHARACTERISTICS  
4.925  
4.900  
4.850  
4.500  
5.00  
5.00  
5.00  
5.00  
5.075  
5.100  
5.150  
5.500  
V
V
V
V
20°C TJ 85°C  
1 mA ILOAD 150 mA  
Output Voltage  
1 mA ILOAD 150 mA  
VIN = 60V,  
RLOAD = 1 k, t 40ms  
VOUT  
Output Voltage Off  
LM9076 BMA only  
VSHUTDOWN 2V,  
RLOAD = 1 kΩ  
300  
0
0
250  
mV  
mV  
mV  
mV  
VIN = -15V,  
RLOAD = 1 kΩ  
Reverse Battery  
9.0V VIN 16V,  
ILOAD = 10 mA  
4
25  
35  
Line Regulation  
ΔVOUT  
16V VIN 40V,  
ILOAD = 10 mA  
17  
Load Regulation  
1 mA ILOAD 150 mA  
ILOAD = 10 mA  
42  
30  
60  
50  
mV  
mV  
mV  
mV  
VDO  
Dropout Voltage  
ILOAD = 50 mA  
80  
ILOAD = 150 mA  
150  
250  
9V VIN 16V,  
ILOAD = 100 uA  
25  
125  
0.6  
3.6  
15  
45  
160  
μA  
μA  
9V VIN 40V,  
ILOAD = 10 mA  
Ground Pin Current  
9V VIN 40V,  
ILOAD = 50 mA  
IGND  
mA  
mA  
μA  
9V VIN 16V,  
ILOAD = 150 mA  
4.5  
25  
Ground Pin Current in 9V VIN 40V,  
Shutdown Mode VSHUTDOWN = 2V  
(1) Pulse testing used maintain constant junction temperature (TJ ).  
(2) The regulated output voltage specification is not ensured for the entire range of VIN and output loads. Device operational range is limited  
by the maximum junction temperature (T J ). The junction temperature is influenced by the ambient temperature (T A ), package  
selection, input voltage (VIN ), and the output load current. When operating with maximum load currents the input voltage and/or ambient  
temperature will be limited. When operating with maximum input voltage the load current and/or the ambient temperature will be limited.  
(3) Not Production tested, Specified by Design. Minimum, Typical, and/or Maximum values are provided for informational purposes only.  
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Electrical Characteristics for LM9076–5.0 (continued)  
The following specifications apply for VIN= 14V; VSHUTDOWN = Open; ILOAD = 10 mA; TJ = +25°C; COUT = 10 µF, 0.5< ESR <  
4.0; unless otherwise specified. Bold Values indicate 40°C TJ 125°C.(1)(2)(3) Minimum and Maximum limits are  
specified through test, design, or statistical correlation.  
Symbol  
Parameter  
Conditions  
Min  
Typ  
Max  
Units  
VOUT Short Circuit  
Current  
VIN = 14V,  
RLOAD = 1Ω  
ISC  
200  
400  
750  
mA  
VIN = (14VDC) + (1VRMS  
@ 120Hz)  
PSRR  
Ripple Rejection  
50  
60  
dB  
ILOAD = 50 mA  
RESET PIN CHARACTERISTICS  
Minimum VIN for valid  
RESET Status  
VOR  
VTHR  
VOH  
VOL  
(Note 3)  
(Note 3)  
1.3  
0.89  
2.0  
0.94  
VOUT  
0.3  
V
VOUT Threshold for  
RESET Low  
X VOUT  
(Nom)  
0.83  
VOUT X 0.90  
External pull-up resistor  
to VOUT = 100 kΩ  
RESET pin high voltage  
RESET pin low voltage  
VOUT X 0.99  
0.2  
V
V
CDELAY < 4.0V,  
ISINK = 250 µA  
CDELAY PIN CHARACTERISTICS  
CDELAY Charging  
Current  
VIN = 14V,  
VDELAY = 0V  
IDELAY  
-0.70  
-0.42  
0.100  
-0.25  
uA  
V
VOUT < 4.0V,  
ISINK = IDELAY  
VOL  
CDELAY pin low voltage  
VIN = 14V, CDELAY  
0.001 uF  
=
tDELAY  
Reset Delay Time  
VOUT rising from 0V, Δt  
from VOUT > VOR to  
RESET pin HIGH  
7.1  
11.9  
20.0  
ms  
SHUTDOWN CONTROL LOGIC — LM9076BMA-5.0 Only  
VSHUTDOWN pin falling  
from 5.0V until VOUT  
>4.5V (VOUT = On)  
SHUTDOWN Pin Low  
Threshold Voltage  
VIL(SD)  
1
1.5  
1.5  
2
V
V
VSHUTDOWN pin rising  
SHUTDOWN Pin High  
Threshold Voltage  
VIH(SD)  
from 0V until VOUT  
0.5V (VOUT = Off)  
<
VSHUTDOWN = 40V  
VSHUTDOWN = 5V  
VSHUTDOWN = 2V  
35  
15  
6
μA  
μA  
μA  
SHUTDOWN Pin High  
Bias Current  
IIH(SD)  
35  
10  
SHUTDOWN Pin Low  
Bias Current  
IIL(SD)  
VSHUTDOWN = 0V  
0
μA  
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Typical Performance Characteristics  
Output Capacitor ESR  
Output Capacitor ESR  
Figure 5.  
Figure 6.  
Output Voltage vs Low Input Voltage  
Output Voltage vs Low Input Voltage  
Figure 7.  
Figure 8.  
Ground Pin Current vs Low Input Voltage  
Ground Pin Current vs Low Input Voltage  
Figure 9.  
Figure 10.  
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Typical Performance Characteristics (continued)  
Ground Pin Current vs Load Current  
Ground Pin Current vs Load Current  
Figure 11.  
Figure 12.  
Output Voltage vs Input Voltage  
Output Voltage vs Input Voltage  
Figure 13.  
Figure 14.  
Output Voltage vs Junction Temperature  
Output Voltage vs Junction Temperature  
Figure 15.  
Figure 16.  
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Typical Performance Characteristics (continued)  
Dropout Voltage vs Load Current  
Load Transient Response  
Figure 17.  
Figure 18.  
Load Transient Response  
Line Transient Response  
Figure 19.  
Figure 20.  
Delayed Reset Time vs Vin  
Normalized to VIN = 14V  
Line Transient Response  
Figure 21.  
Figure 22.  
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Typical Performance Characteristics (continued)  
Ripple Rejection  
Figure 23.  
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APPLICATION INFORMATION  
REGULATOR BASICS  
The LM9076 regulator is suitable for Automotive and Industrial applications where continuous connection to a  
battery supply is required (refer to Typical Applications).  
The pass element of the regulator is a PNP device which requires an output bypass capacitor for stability. The  
minimum bypass capacitance for the output is 10 μF (refer to ESR limitations). A 22 μF, or larger, output bypass  
capacitor is recommended for typical applications  
INPUT CAPACITOR  
The LM9076 requires a low source impedance to maintain regulator stability because critical portions of the  
internal bias circuitry are connected to directly to VIN. In general, a 10 μF electrolytic capacitor, located within two  
inches of the LM9076, is adequate for a majority of applications. Additionally, and at a minimum, a 0.1 μF  
ceramic capacitor should be located between the LM9076 VIN and Ground pin, and as close as is physically  
possible to the LM9076 itself .  
OUTPUT CAPACITOR  
An output bypass capacitor is required for stability. This capacitance must be placed between the LM9076 VOUT  
pin and Ground pin, as close as is physically possible, using traces that are not part of the load current path.  
The output capacitor must meet the requirements for minimum capacitance and also maintain the appropriate  
ESR value across the entire operating ambient temperature range. There is no limit to the maximum output  
capacitance as long as ESR is maintained.  
The minimum bypass capacitance for the output is 10 μF (refer to ESR limitations). A 22 μF, or larger, output  
bypass capacitor is recommended for typical applications.  
Solid tantalums capacitors are recommended as they generally maintain capacitance and ESR ratings over a  
wide temperature range. Ceramic capacitor types XR7 and XR5 may be used if a series resistor is added to  
simulate the minimum ESR requirement. See Figure 24.  
Aluminum electrolytic capacitors are not recommended as they are subject to wide changes in capacitance and  
ESR across temperature.  
Figure 24. Using Low ESR Capacitors  
DELAY CAPACITOR  
The capacitor on the Delay pin must be a low leakage type since the charge current is minimal (420 nA typical)  
and the pin must fully charge to VOUT. Ceramic, Mylar, and polystyrene capacitor types are generally  
recommended, although changes in capacitance values across temperature changes will have some effect on  
the delay timing.  
Any leakage of the IDELAY current, be it through the delay capacitor or any other path, will extend the delay time,  
possibly to the point that the Reset pin output does not go high.  
SHUTDOWN PIN - LM9076BMA ONLY  
The basic On/Off control of the regulator is accomplished with the SHUTDOWN pin. By pulling the SHUTDOWN  
pin high the regulator output is switched Off. When the regulator is switched Off the load on the battery will be  
primarily due to the SHUTDOWN pin current.  
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When the SHUTDOWN pin is low, or left open, the regulator is switched On. When an unregulated supply, such  
as V BATTERY , is used to pull the SHUTDOWN pin high a series resistor in the range of 10Kto 50Kis  
recommended to provide reverse voltage transient protection of the SHUTDOWN pin. Adding a small capacitor  
(0.001uF typical) from the SHUTDOWN pin to Ground will add noise immunity to prevent accidental turn on due  
to noise on the supply line.  
RESET FLAG  
The RESET pin is an open collector output which requires an external pull-up resistor to develop the reset signal.  
The external pull-up resistor should be in the range of 10 kto 200 k.  
At VIN values of less than typically 2V the RESET pin voltage will be high. For VIN values between typically 2V  
and approximately VOUT + VBE the RESET pin voltage will be low. For VIN values greater than approximately  
VOUT + VBE the RESET pin voltage will be dependent on the status of the VOUT pin voltage and the Delayed  
Reset circuitry. The value of VBE is typically 600 mV at 25°C and will decrease approximately 2 mV for every 1°C  
increase in the junction temperature. During normal operation the RESET pin voltage will be high .  
Any load condition that causes the VOUT pin voltage to drop below typically 89% of normal will activate the  
Delayed Reset circuit and the RESET pin will go low for the duration of the delay time.  
Any line condition that causes VIN pin voltage to drop below typically VOUT + VBE will cause the RESET pin to go  
low without activating the Delayed Reset circuitry.  
Excessive thermal dissipation will raise the junction temperature and could activate the Thermal Shutdown  
circuitry which, in turn, will cause the RESET pin to go low.  
For the LM9076BMA devices, pulling the SHUTDOWN pin high will turn off the output which, in turn, will cause  
the RESET pin to go low once the VOUT voltage has decayed to a value that is less than typically 89% of normal.  
See Figure 25.  
RESET DELAY TIME  
When the regulator output is switched On, or after recovery from brief VOUT fault condition, the RESET flag can  
be can be programmed to remain low for an additional delay time. This will give time for any system reference  
voltages, clock signals, etc., to stabilize before the micro-controller resumes normal operation.  
This delay time is controlled by the capacitor value on the CDELAY pin. During normal operation the CDELAY  
capacitor is charged to near VOUT . When a VOUT fault causes the RESET pin to go low, the CDELAY capacitor is  
quickly discharged to ground. When the VOUT fault is removed, and VOUT returns to the normal operating value,  
the CDELAY capacitor begins charging at a typical constant 0.420 uA rate. When the voltage on the CDELAY  
capacitor reaches the same potential as the VOUT pin the RESET pin will be allowed to return high.  
The typical RESET delay time can be calculated with the following formula:  
tDELAY = VOUT X (CDELAY / IDELAY  
)
(1)  
For the LM9076–3.3 with a CDELAY value of 0.001 uF and a IDELAY value of 0.420 uA the typical RESET delay  
time is:  
tDELAY =3.3V × (0.001 uF / 0.420 uA) = 7.8 ms  
(2)  
For the LM9076–5.0 with a CDELAY value of 0.001 uF and a IDELAY value of 0.420 uA the typical RESET delay  
time is:  
tDELAY = 5.0V X (0.001uF / 0.420uA) = 11.9 ms  
(3)  
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THERMAL PROTECTION  
Device operational range is limited by the maximum junction temperature (TJ). The junction temperature is  
influenced by the ambient temperature (TA), package selection, input voltage (VIN), and the output load current.  
When operating with maximum load currents the input voltage and/or ambient temperature will be limited. When  
operating with maximum input voltage the load current and/or the ambient temperature will be limited.  
Even though the LM9076 is equipped with circuitry to protect itself from excessive thermal dissipation, it is not  
recommended that the LM9076 be operated at, or near, the maximum recommended die junction temperature  
(TJ) as this may impair long term device reliability.  
The thermal protection circuity monitors the temperature at the die level. When the die temperature exceeds  
typically 160°C the voltage regulator output will be switched off.  
Figure 25. Typical Reset Pin Operational Waveforms  
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REVISION HISTORY  
Changes from Revision K (March 2013) to Revision L  
Page  
Changed layout of National Data Sheet to TI format .......................................................................................................... 12  
Copyright © 2003–2013, Texas Instruments Incorporated  
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Product Folder Links: LM9076  
PACKAGE OPTION ADDENDUM  
www.ti.com  
1-Nov-2013  
PACKAGING INFORMATION  
Orderable Device  
LM9076BMA-3.3/NOPB  
LM9076BMA-5.0  
Status Package Type Package Pins Package  
Eco Plan  
Lead/Ball Finish  
MSL Peak Temp  
Op Temp (°C)  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
-40 to 125  
Device Marking  
Samples  
Drawing  
Qty  
(1)  
(2)  
(6)  
(3)  
(4/5)  
ACTIVE  
SOIC  
SOIC  
SOIC  
SOIC  
SOIC  
D
8
8
8
8
8
5
5
5
5
5
5
95  
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
CU SN  
CU SN  
CU SN  
Call TI  
CU SN  
Call TI  
CU SN  
CU SN  
CU SN  
Level-1-260C-UNLIM  
9076B  
MA3.3  
NRND  
ACTIVE  
ACTIVE  
ACTIVE  
NRND  
D
95  
95  
TBD  
Call TI  
9076B  
MA5.0  
LM9076BMA-5.0/NOPB  
LM9076BMAX-3.3/NOPB  
LM9076BMAX-5.0/NOPB  
LM9076S-3.3  
D
Green (RoHS  
& no Sb/Br)  
Level-1-260C-UNLIM  
Level-1-260C-UNLIM  
Level-1-260C-UNLIM  
Call TI  
9076B  
MA5.0  
D
2500  
2500  
45  
Green (RoHS  
& no Sb/Br)  
9076B  
MA3.3  
D
Green (RoHS  
& no Sb/Br)  
9076B  
MA5.0  
DDPAK/  
TO-263  
KTT  
KTT  
KTT  
KTT  
KTT  
KTT  
TBD  
LM9076S  
-3.3  
LM9076S-3.3/NOPB  
LM9076S-5.0  
ACTIVE  
NRND  
DDPAK/  
TO-263  
45  
Pb-Free (RoHS  
Exempt)  
Level-3-245C-168 HR  
Call TI  
LM9076S  
-3.3  
DDPAK/  
TO-263  
45  
TBD  
LM9076S  
-5.0  
LM9076S-5.0/NOPB  
LM9076SX-3.3/NOPB  
LM9076SX-5.0/NOPB  
ACTIVE  
ACTIVE  
ACTIVE  
DDPAK/  
TO-263  
45  
Pb-Free (RoHS  
Exempt)  
Level-3-245C-168 HR  
Level-3-245C-168 HR  
Level-3-245C-168 HR  
LM9076S  
-5.0  
DDPAK/  
TO-263  
500  
500  
Pb-Free (RoHS  
Exempt)  
LM9076S  
-3.3  
DDPAK/  
TO-263  
Pb-Free (RoHS  
Exempt)  
LM9076S  
-5.0  
(1) The marketing status values are defined as follows:  
ACTIVE: Product device recommended for new designs.  
LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect.  
NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design.  
PREVIEW: Device has been announced but is not in production. Samples may or may not be available.  
OBSOLETE: TI has discontinued the production of the device.  
(2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability  
information and additional product content details.  
TBD: The Pb-Free/Green conversion plan has not been defined.  
Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that  
lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes.  
Addendum-Page 1  
PACKAGE OPTION ADDENDUM  
www.ti.com  
1-Nov-2013  
Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between  
the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above.  
Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight  
in homogeneous material)  
(3) MSL, Peak Temp. - The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature.  
(4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device.  
(5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation  
of the previous line and the two combined represent the entire Device Marking for that device.  
(6) Lead/Ball Finish - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead/Ball Finish values may wrap to two lines if the finish  
value exceeds the maximum column width.  
Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information  
provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and  
continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals.  
TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release.  
In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis.  
Addendum-Page 2  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
23-Sep-2013  
TAPE AND REEL INFORMATION  
*All dimensions are nominal  
Device  
Package Package Pins  
Type Drawing  
SPQ  
Reel  
Reel  
A0  
B0  
K0  
P1  
W
Pin1  
Diameter Width (mm) (mm) (mm) (mm) (mm) Quadrant  
(mm) W1 (mm)  
LM9076BMAX-3.3/NOPB SOIC  
LM9076BMAX-5.0/NOPB SOIC  
D
D
8
8
5
2500  
2500  
500  
330.0  
330.0  
330.0  
12.4  
12.4  
24.4  
6.5  
6.5  
5.4  
5.4  
2.0  
2.0  
5.0  
8.0  
8.0  
12.0  
12.0  
24.0  
Q1  
Q1  
Q2  
LM9076SX-3.3/NOPB  
DDPAK/  
TO-263  
KTT  
10.75 14.85  
16.0  
LM9076SX-5.0/NOPB  
DDPAK/  
TO-263  
KTT  
5
500  
330.0  
24.4  
10.75 14.85  
5.0  
16.0  
24.0  
Q2  
Pack Materials-Page 1  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
23-Sep-2013  
*All dimensions are nominal  
Device  
Package Type Package Drawing Pins  
SPQ  
Length (mm) Width (mm) Height (mm)  
LM9076BMAX-3.3/NOPB  
LM9076BMAX-5.0/NOPB  
LM9076SX-3.3/NOPB  
LM9076SX-5.0/NOPB  
SOIC  
D
8
8
5
5
2500  
2500  
500  
367.0  
367.0  
367.0  
367.0  
367.0  
367.0  
367.0  
367.0  
35.0  
35.0  
45.0  
45.0  
SOIC  
D
DDPAK/TO-263  
DDPAK/TO-263  
KTT  
KTT  
500  
Pack Materials-Page 2  
MECHANICAL DATA  
KTT0005B  
TS5B (Rev D)  
BOTTOM SIDE OF PACKAGE  
www.ti.com  
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