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 LT1761 Series 100mA, Low Noise, LDO Micropower Regulators in SOT-23
FEATURES
s s s s s s s s
DESCRIPTIO
s s s
s s s s
Tiny 5-Lead SOT-23 Package Low Noise: 20VRMS (10Hz to 100kHz) Low Quiescent Current: 20A Wide Input Voltage Range: 1.8V to 20V Output Current: 100mA Very Low Shutdown Current: < 0.1A Low Dropout Voltage: 300mV at 100mA Fixed Output Voltages: 1.5V, 1.8V, 2V, 2.5V, 2.8V, 3V, 3.3V, 5V Adjustable Output from 1.22V to 20V Stable with 1F Output Capacitor Stable with Aluminum, Tantalum or Ceramic Capacitors Reverse Battery Protected No Reverse Current No Protection Diodes Needed Overcurrent and Overtemperature Protected
APPLICATIO S
s s s s s
Cellular Phones Pagers Battery-Powered Systems Frequency Synthesizers Wireless Modems
The LT (R)1761 series are micropower, low noise, low dropout regulators. With an external 0.01F bypass capacitor, output noise drops to 20VRMS over a 10Hz to 100kHz bandwidth. Designed for use in battery-powered systems, the low 20A quiescent current makes them an ideal choice. In shutdown, quiescent current drops to less than 0.1A. The devices are capable of operating over an input voltage from 1.8V to 20V, and can supply 100mA of output current with a dropout voltage of 300mV. Quiescent current is well controlled, not rising in dropout as it does with many other regulators. The LT1761 regulators are stable with output capacitors as low as 1F. Small ceramic capacitors can be used without the series resistance required by other regulators. Internal protection circuitry includes reverse battery protection, current limiting, thermal limiting and reverse current protection. The device is available in fixed output voltages of 1.5V, 1.8V, 2V, 2.5V, 2.8V, 3V, 3.3V and 5V, and as an adjustable device with a 1.22V reference voltage. The LT1761 regulators are available in the 5-lead SOT-23 package.
, LTC and LT are registered trademarks of Linear Technology Corporation.
TYPICAL APPLICATIO
10Hz to 100kHz Output Noise
5V Low Noise Regulator
IN 1F OUT LT1761-5 SHDN GND BYP
1761 TA01
VIN 5.4V TO 20V
0.01F
+
5V AT100mA 20VRMS NOISE 10F
VOUT 100V/DIV
U
20VRMS
1761 G48
U
U
sn1761 1761fas
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LT1761 Series
ABSOLUTE AXI U RATI GS
IN Pin Voltage ........................................................ 20V OUT Pin Voltage .................................................... 20V Input to Output Differential Voltage ....................... 20V ADJ Pin Voltage ...................................................... 7V BYP Pin Voltage.................................................... 0.6V SHDN Pin Voltage ................................................. 20V
PACKAGE/ORDER I FOR ATIO
TOP VIEW IN 1 GND 2 BYP 3 4 ADJ 5 OUT IN 1 GND 2 SHDN 3
S5 PACKAGE 5-LEAD PLASTIC SOT-23
TJMAX = 150C, JA = 250C/ W SEE THE APPLICATIONS INFORMATION SECTION.
S5 PACKAGE 5-LEAD PLASTIC SOT-23
TJMAX = 150C, JA = 250C/ W SEE THE APPLICATIONS INFORMATION SECTION.
ORDER PART NUMBER LT1761ES5-BYP
S5 PART MARKING LTGC
ORDER PART NUMBER LT1761ES5-SD
Consult factory for parts specified with wider operating temperature ranges.
ELECTRICAL CHARACTERISTICS
The q denotes specifications which apply over the full operating temperature range, otherwise specifications are TA = 25C. (Note 2)
PARAMETER CONDITIONS
q q q q q q q q q
Minimum Input Voltage (Notes 3, 11) ILOAD = 100mA Regulated Output Voltage LT1761-1.5 VIN = 2V, ILOAD = 1mA (Note 4) 2.5V < VIN < 20V, 1mA < ILOAD < 50mA 2.5V < VIN < 20V, 1mA < ILOAD < 100mA LT1761-1.8 VIN = 2.3V, ILOAD = 1mA 2.8V < VIN < 20V, 1mA < ILOAD < 50mA 2.8V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 2.5V, ILOAD = 1mA 3V < VIN < 20V, 1mA < ILOAD < 50mA 3V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 3V, ILOAD = 1mA 3.5V < VIN < 20V, 1mA < ILOAD < 50mA 3.5V < VIN < 20V, 1mA < ILOAD < 100mA
LT1761-2
LT1761-2.5
2
U
U
W
WW
U
W
(Note 1)
Output Short-Circut Duration .......................... Indefinite Operating Junction Temperature Range (Note 2) ............................................ - 40C to 125C Storage Temperature Range ................. - 65C to 150C Lead Temperature (Soldering, 10 sec).................. 300C
TOP VIEW 5 OUT IN 1 GND 2 4 ADJ SHDN 3
TOP VIEW 5 OUT
4 BYP
S5 PACKAGE 5-LEAD PLASTIC SOT-23 TJMAX = 150C, JA = 250C/ W
SEE THE APPLICATIONS INFORMATION SECTION.
S5 PART MARKING LTGH
ORDER PART NUMBER LT1761ES5-1.5 LT1761ES5-1.8 LT1761ES5-2 LT1761ES5-2.5 LT1761ES5-2.8 LT1761ES5-3 LT1761ES5-3.3 LT1761ES5-5
S5 PART MARKING LTMT LTJM LTJE LTGD LTLB LTGE LTGF LTGG
MIN 1.478 1.457 1.436 1.775 1.750 1.725 1.970 1.945 1.920 2.465 2.435 2.415
TYP 1.8 1.5 1.5 1.5 1.8 1.8 1.8 2 2 2 2.5 2.5 2.5
MAX 2.3 1.522 1.538 1.555 1.825 1.845 1.860 2.030 2.045 2.060 2.535 2.565 2.575
UNITS V V V V V V V V V V V V V
sn1761 1761fas
LT1761 Series
ELECTRICAL CHARACTERISTICS
The q denotes specifications which apply over the full operating temperature range, otherwise specifications are TA = 25C. (Note 2)
PARAMETER Regulated Output Voltage (Note 4) CONDITIONS LT1761-2.8 VIN = 3.3V, ILOAD = 1mA 3.8V < VIN < 20V, 1mA < ILOAD < 50mA 3.8V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 3.5V, ILOAD = 1mA 4V < VIN < 20V, 1mA < ILOAD < 50mA 4V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 3.8V, ILOAD = 1mA 4.3V < VIN < 20V, 1mA < ILOAD < 50mA 4.3V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 5.5V, ILOAD = 1mA 6V < VIN < 20V, 1mA < ILOAD < 50mA 6V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 2V, ILOAD = 1mA 2.3V < VIN < 20V, 1mA < ILOAD < 50mA 2.3V < VIN < 20V, 1mA < ILOAD < 100mA VIN = 2V to 20V, ILOAD = 1mA VIN = 2.3V to 20V, ILOAD = 1mA VIN = 2.5V to 20V, ILOAD = 1mA VIN = 3V to 20V, ILOAD = 1mA VIN = 3.3V to 20V, ILOAD = 1mA VIN = 3.5V to 20V, ILOAD = 1mA VIN = 3.8V to 20V, ILOAD = 1mA VIN = 5.5V to 20V, ILOAD = 1mA VIN = 2V to 20V, ILOAD = 1mA VIN = 2.5V, ILOAD = 1mA to 50mA VIN = 2.5V, ILOAD = 1mA to 50mA VIN = 2.5V, ILOAD = 1mA to 100mA VIN = 2.5V, ILOAD = 1mA to 100mA VIN = 2.8V, ILOAD = 1mA to 50mA VIN = 2.8V, ILOAD = 1mA to 50mA VIN = 2.8V, ILOAD = 1mA to 100mA VIN = 2.8V, ILOAD = 1mA to 100mA VIN = 3V, ILOAD = 1mA to 50mA VIN = 3V, ILOAD = 1mA to 50mA VIN = 3V, ILOAD = 1mA to 100mA VIN = 3V, ILOAD = 1mA to 100mA VIN = 3.5V, ILOAD = 1mA to 50mA VIN = 3.5V, ILOAD = 1mA to 50mA VIN = 3.5V, ILOAD = 1mA to 100mA VIN = 3.5V, ILOAD = 1mA to 100mA VIN = 3.8V, ILOAD = 1mA to 50mA VIN = 3.8V, ILOAD = 1mA to 50mA VIN = 3.8V, ILOAD = 1mA to 100mA VIN = 3.8V, ILOAD = 1mA to 100mA VIN = 4V, ILOAD = 1mA to 50mA VIN = 4V, ILOAD = 1mA to 50mA VIN = 4V, ILOAD = 1mA to 100mA VIN = 4V, ILOAD = 1mA to 100mA
q q q q q q q q q q q q q q q q q q q q
MIN 2.762 2.732 2.706 2.960 2.930 2.900 3.250 3.230 3.190 4.935 4.900 4.850 1.205 1.190 1.170
TYP 2.8 2.8 2.8 3 3 3 3.3 3.3 3.3 5 5 5 1.220 1.220 1.220 1 1 1 1 1 1 1 1 1 10 14
MAX 2.838 2.868 2.884 3.040 3.070 3.090 3.350 3.370 3.400 5.065 5.100 5.120 1.235 1.250 1.260 10 10 10 10 10 10 10 10 10 20 35 30 55 20 35 30 60 20 35 35 65 20 35 40 80 20 38 40 86 20 40 40 90
UNITS V V V V V V V V V V V V V V V mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV mV
LT1761-3
LT1761-3.3
LT1761-5
ADJ Pin Voltage (Note 3, 4) Line Regulation
LT1761
LT1761-1.5 LT1761-1.8 LT1761-2 LT1761-2.5 LT1761-2.8 LT1761-3 LT1761-3.3 LT1761-5 LT1761(Note 3) LT1761-1.5
Load Regulation
q
LT1761-1.8
10
q
15
q
LT1761-2
10
q
15
q
LT1761-2.5
10
q
20
q
LT1761-2.8
10
q
20
q
LT1761-3
10
q
20
q
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LT1761 Series
ELECTRICAL CHARACTERISTICS
The q denotes specifications which apply over the full operating temperature range, otherwise specifications are TA = 25C. (Note 2)
PARAMETER Load Regulation CONDITIONS LT1761-3.3 VIN = 4.3V, ILOAD = 1mA to 50mA VIN = 4.3V, ILOAD = 1mA to 50mA VIN = 4.3V, ILOAD = 1mA to 100mA VIN = 4.3V, ILOAD = 1mA to 100mA VIN = 6V, ILOAD = 1mA to 50mA VIN = 6V, ILOAD = 1mA to 50mA VIN = 6V, ILOAD = 1mA to 100mA VIN = 6V, ILOAD = 1mA to 100mA
q
MIN
TYP 10 20
MAX 20 40 40 100 30 60 65 150 6 12 12 50 0.15 0.19 0.22 0.29 0.28 0.38 0.35 0.45 45 100 400 2 4 100 2 0.5 3 0.1
UNITS mV mV mV mV mV mV mV mV mV mV mV mV V V V V V V V V A A A mA mA VRMS nA V V A A A dB mA mA
q
LT1761-5
15
q
25
q
LT1761 (Note 3) VIN = 2.3V, ILOAD = 1mA to 50mA VIN = 2.3V, ILOAD = 1mA to 50mA VIN = 2.3V, ILOAD = 1mA to 100mA VIN = 2.3V, ILOAD = 1mA to 100mA Dropout Voltage VIN = VOUT(NOMINAL) (Notes 5, 6, 11) ILOAD = 1mA ILOAD = 1mA ILOAD = 10mA ILOAD = 10mA ILOAD = 50mA ILOAD = 50mA ILOAD = 100mA ILOAD = 100mA GND Pin Current VIN = VOUT(NOMINAL) (Notes 5, 7) ILOAD = 0mA ILOAD = 1mA ILOAD = 10mA ILOAD = 50mA ILOAD = 100mA COUT = 10F, CBYP = 0.01F, ILOAD = 100mA, BW = 10Hz to 100kHz (Notes 3, 8) VOUT = Off to On VOUT = On to Off VSHDN = 0V VSHDN = 20V VIN = 6V, VSHDN = 0V VIN - VOUT = 1.5V (Avg), VRIPPLE = 0.5VP-P, fRIPPLE = 120Hz, ILOAD = 50mA VIN = 7V, VOUT = 0V VIN = VOUT(NOMINAL) + 1V, VOUT = - 5% VIN = - 20V, VOUT = 0V LT1761-1.5 VOUT = 1.5V, VIN < 1.5V LT1761-1.8 VOUT = 1.8V, VIN < 1.8V LT1761-2 VOUT = 2V, VIN < 2V LT1761-2.5 VOUT = 2.5V, VIN < 2.5V LT1761-2.8 VOUT = 2.8V, VIN < 2.8V LT1761-3 VOUT = 3V, VIN < 3V LT1761-3.3 VOUT = 3.3V, VIN < 3.3V LT1761-5 VOUT = 5V, VIN < 5V LT1761 (Note 3) VOUT = 1.22V, VIN < 1.22V
1
q
1
q
0.10
q
0.17
q
0.24
q
0.30
q q q q q q
20 55 230 1 2.2 20 30
Output Voltage Noise ADJ Pin Bias Current Shutdown Threshold SHDN Pin Current (Note 9) Quiescent Current in Shutdown Ripple Rejection (Note 3) Current Limit Input Reverse Leakage Current Reverse Output Current (Note 10)
q q q q
0.25
0.8 0.65 0 1 0.01
55
65 200
q q
110 1 10 10 10 10 10 10 10 10 5 20 20 20 20 20 20 20 20 10
mA A A A A A A A A A
Note 1: Absolute Maximum Ratings are those values beyond which the life of a device may be impaired. Note 2: The LT1761 regulators are tested and specified under pulse load conditions such that TJ TA. The LT1761 is 100% production tested at
TA = 25C. Performance at - 40C and 125C is assured by design, characterization and correlation with statistical process controls. Note 3: The LT1761 (adjustable versions) are tested and specified for these conditions with the ADJ pin connected to the OUT pin.
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LT1761 Series
ELECTRICAL CHARACTERISTICS
Note 4: Operating conditions are limited by maximum junction temperature. The regulated output voltage specification will not apply for all possible combinations of input voltage and output current. When operating at maximum input voltage, the output current range must be limited. When operating at maximum output current, the input voltage range must be limited. Note 5: To satisfy requirements for minimum input voltage, the LT1761 (adjustable version) is tested and specified for these conditions with an external resistor divider (two 250k resistors) for an output voltage of 2.44V. The external resistor divider will add a 5A DC load on the output. Note 6: Dropout voltage is the minimum input to output voltage differential needed to maintain regulation at a specified output current. In dropout, the output voltage will be equal to: VIN - VDROPOUT. Note 7: GND pin current is tested with VIN = VOUT(NOMINAL) or VIN = 2.3V (whichever is greater) and a current source load. This means the device is tested while operating in its dropout region or at the minimum input voltage specification. This is the worst-case GND pin current. The GND pin current will decrease slightly at higher input voltages. Note 8: ADJ pin bias current flows into the ADJ pin. Note 9: SHDN pin current flows into the SHDN pin. Note 10: Reverse output current is tested with the IN pin grounded and the OUT pin forced to the rated output voltage. This current flows into the OUT pin and out the GND pin. Note 11: For the LT1761, LT1761-1.5, LT1761-1.8 and LT1761-2 dropout voltage will be limited by the minimum input voltage specification under some output voltage/load conditions. See the curve of Minimum Input Voltage in the Typical Performance Characteristics.
TYPICAL PERFOR A CE CHARACTERISTICS
Typical Dropout Voltage
500 450
DROPOUT VOLTAGE (mV) DROPOUT VOLTAGE (mV)
350 300 250 200 150 100 50 0 0
TJ = 125C
350 300 250 200 150 100 50 0
TJ 125C TJ 25C
DROPOUT VOLTAGE (mV)
400
TJ = 25C
10 20 30 40 50 60 70 80 90 100 OUTPUT CURRENT (mA)
1761 G00
Quiescent Current
40 35 VIN = 6V RL = (250k FOR LT1761-BYP, -SD) IL = 0 (5A FOR LT1761-BYP, -SD) 1.528 1.521
QUIESCENT CURRENT (A)
OUTPUT VOLTAGE (V)
25 VSHDN = VIN 20 15 10 5 0 -50 -25 VSHDN = 0V 0 25 50 75 100 125 TEMPERATURE (C)
1761 G03
1.507 1.500 1.493 1.486 1.479 1.472 -50 -25 0 25 50 75 100 125
OUTPUT VOLTAGE (V)
30
UW
Guaranteed Dropout Voltage
500 450 400
Dropout Voltage
500 450 400 350 300 250 200 150 100 50 IL = 50mA IL = 10mA IL = 1mA IL = 100mA
= TEST POINTS
0
10 20 30 40 50 60 70 80 90 100 OUTPUT CURRENT (mA)
1761 G01
0 -50 -25
50 25 0 75 TEMPERATURE (C)
100
125
1761 G01.1
LT1761-1.5 Output Voltage
1.84 IL = 1mA 1.83 1.82 1.81 1.80 1.79 1.78 1.77 1.514
LT1761-1.8 Output Voltage
IL = 1mA
1.76 -50 -25
0
25
50
75
100
125
TEMPERATURE (C)
1761 G51
TEMPERATURE (C)
1761 G06
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LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
LT1761-2 Output Voltage
2.04 IL = 1mA 2.03 2.53 2.02 2.01 2.00 1.99 1.98 1.97 1.96 -50 -25 0 25 50 75 100 125 2.52 2.51 2.50 2.49 2.48 2.47 2.46 -50 -25 0 25 50 75 100 125 2.54 IL = 1mA 2.83
OUTPUT VOLTAGE (V)
OUTPUT VOLTAGE (V)
OUTPUT VOLTAGE (V)
TEMPERATURE (C)
1761 G07
LT1761-3 Output Voltage
3.060 IL = 1mA 3.045 3.345 3.030 3.015 3.000 2.985 2.970 2.955 2.940 -50 -25 0 25 50 75 100 125 3.360
OUTPUT VOLTAGE (V)
OUTPUT VOLTAGE (V)
OUTPUT VOLTAGE (V)
TEMPERATURE (C)
1761 G09
LT1761-BYP, LT1761-SD ADJ Pin Voltage
1.240 1.235
ADJ PIN VOLTAGE (V)
IL = 1mA
QUIESCENT CURRENT (A)
1.230 1.225 1.220 1.215 1.210 1.205 1.200 -50 -25 0 25 50 75 100 125
150 125 100 75 50 25 0 0 1 2 VSHDN = VIN VSHDN = 0V 34567 INPUT VOLTAGE (V) 8 9 10
QUIESCENT CURRENT (A)
TEMPERATURE (C)
1761 G10
6
UW
LT1761-2.5 Output Voltage
2.84
LT1761-2.8 Output Voltage
IL = 1mA 2.82 2.81 2.80 2.79 2.78 2.77 2.76 -50 -25 0 25 50 75 100 125
TEMPERATURE (C)
1761 G08
TEMPERATURE (C)
1761 G52
LT1761-3.3 Output Voltage
5.08 IL = 1mA 5.06 5.04 5.02 5.00 4.98 4.96 4.94 0 25 50 75 125 3.330 3.315 3.300 3.285 3.270 3.255 3.240 -50 -25 100
LT1761-5 Output Voltage
IL = 1mA
4.92 -50 -25
0
25
50
75
100
125
TEMPERATURE (C)
1761 G11
TEMPERATURE (C)
1761 G12
LT1761-1.5 Quiescent Current
200 175 TJ = 25C RL = 200 175 150 125 100 75 50 25 0
LT1761-1.8 Quiescent Current
TJ = 25C RL =
VSHDN = VIN VSHDN = 0V 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10
1761 G53
1761 G18
sn1761 1761fas
LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
LT1761-2 Quiescent Current
200 175 TJ = 25C RL = 200 175 TJ = 25C RL =
QUIESCENT CURRENT (A)
QUIESCENT CURRENT (A)
150 125 100 75 50 25 0 0 1 2 VSHDN = VIN VSHDN = 0V 34567 INPUT VOLTAGE (V) 8 9 10
150 125 100 75 50 25 0 0 1 2 VSHDN = VIN VSHDN = 0V 34567 INPUT VOLTAGE (V) 8 9 10
QUIESCENT CURRENT (A)
LT1761-3 Quiescent Current
200 175 TJ = 25C RL = 200 175
QUIESCENT CURRENT (A)
QUIESCENT CURRENT (A)
150 125 100 75 50 25 0 0 1 2 VSHDN = VIN VSHDN = 0V 34567 INPUT VOLTAGE (V) 8 9 10
150 125 100 75 50 25 0 0 1 2 VSHDN = VIN VSHDN = 0V 34567 INPUT VOLTAGE (V) 8 9 10
QUIESCENT CURRENT (A)
LT1761-BYP, LT1761-SD Quiescent Current
30 25
QUIESCENT CURRENT (A)
TJ = 25C RL = 250k IL = 5A
GND PIN CURRENT (mA)
20 15 10 5
VSHDN = VIN
1.75 1.50 1.25 1.00 0.75 0.50
GND PIN CURRENT (mA)
VSHDN = 0V 0 0 2 4 6 8 10 12 14 16 18 20 INPUT VOLTAGE (V)
1761 G17
UW
1761 G14
LT1761-2.5 Quiescent Current
200 175 150 125 100 75 50 25 0
LT1761-2.8 Quiescent Current
TJ = 25C RL =
VSHDN = VIN VSHDN = 0V 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10
1761 G19
1761 G13
1761 G54
LT1761-3.3 Quiescent Current
200 TJ = 25C RL = 175 150 125 100 75 50 25 0
LT1761-5 Quiescent Current
TJ = 25C RL =
VSHDN = VIN VSHDN = 0V 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10
1761 G15
1761 G16
LT1761-1.5 GND Pin Current
2.50 2.25 2.00 RL = 15 IL = 100mA* TJ = 25C *FOR VOUT = 1.5V 2.50 2.25 2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10
LT1761-1.8 GND Pin Current
TJ = 25C *FOR VOUT = 1.8V RL = 18 IL = 100mA* RL = 36 IL = 50mA* RL = 1.8k IL = 1mA* RL = 180 IL = 10mA* 8 9 10
RL = 30 IL = 50mA* RL = 1.5k IL = 1mA* RL = 150 IL = 10mA*
0.25 0
0
1
2
34567 INPUT VOLTAGE (V)
1761 G55
1761 G02
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LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
LT1761-2 GND Pin Current
2.50 2.25 TJ = 25C *FOR VOUT = 2V
GND PIN CURRENT (mA)
GND PIN CURRENT (mA)
1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 1 2
RL = 20 IL = 100mA*
1.75 1.50 1.25 1.00 0.75 0.50 0.25 0
GND PIN CURRENT (mA)
2.00
RL = 40 IL = 50mA* RL = 2k IL = 1mA* RL = 200 IL = 10mA* 8 9 10
34567 INPUT VOLTAGE (V)
LT1761-3 GND Pin Current
2.50 2.25
GND PIN CURRENT (mA)
TJ = 25C *FOR VOUT = 3V
GND PIN CURRENT (mA)
GND PIN CURRENT (mA)
2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10 RL = 3k IL = 1mA* RL = 300 IL = 10mA* RL = 60 IL = 50mA* RL = 30 IL = 100mA*
LT1761-BYP, LT1761-SD GND Pin Current
2.50 2.25
GND PIN CURRENT (mA)
TJ = 25C *FOR VOUT = 1.22V
SHDN PIN THRESHOLD (V)
GND PIN CURRENT (mA)
2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 1 2
RL = 12.2 IL = 100mA*
RL = 24.4 IL = 50mA*
RL = 1.22k IL = 1mA*
RL = 122 IL = 10mA* 8 9 10
34567 INPUT VOLTAGE (V)
8
UW
1761 G04 1761 G21 1761 G24
LT1761-2.5 GND Pin Current
2.50 2.25 2.00 RL = 25 IL = 100mA TJ = 25C *FOR VOUT = 2.5V
2.50 2.25 2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0
LT1761-2.8 GND Pin Current
TJ = 25C *FOR VOUT = 2.8V RL = 28 IL = 100mA
RL = 50 IL = 50mA* RL = 2.5k IL = 1mA* RL = 250 IL = 10mA* 8 9 10
RL = 56 IL = 50mA* RL = 2.8k IL = 1mA* RL = 280 IL = 10mA* 8 9 10
0
1
2
34567 INPUT VOLTAGE (V)
0
1
2
34567 INPUT VOLTAGE (V)
1761 G20
1761 G56
LT1761-3.3 GND Pin Current
2.50 2.25 2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 1 2 34567 INPUT VOLTAGE (V) 8 9 10 RL = 3.3k IL = 1mA* RL = 330 IL = 10mA* RL = 66 IL = 50mA* RL = 33 IL = 100mA* TJ = 25C *FOR VOUT = 3.3V 2.50 2.25 2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0
LT1761-5 GND Pin Current
TJ = 25C *FOR VOUT = 5V RL = 50 IL = 100mA
RL = 100 IL = 50mA* RL = 5k IL = 1mA*
RL = 500 IL = 10mA*
0
1
2
34567 INPUT VOLTAGE (V)
8
9
10
1761 G22
1761 G23
GND Pin Current vs ILOAD
2.50 2.25 2.00 1.75 1.50 1.25 1.00 0.75 0.50 0.25 0 0 10 20 30 40 50 60 70 80 90 100 OUTPUT CURRENT (mA)
1761 G25
SHDN Pin Threshold (On-to-Off)
1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0 -50 -25 50 0 75 25 TEMPERATURE (C) 100 125 IL = 1mA
VIN = VOUT(NOMINAL) + 1V
1761 G26
sn1761 1761fas
LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
SHDN Pin Threshold (Off-to-On)
1.0 0.9 IL = 100mA
SHDN PIN INPUT CURRENT (A)
SHDN PIN THRESHOLD (V)
0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0 -50 -25
0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1
SHDN PIN INPUT CURRENT (A)
IL = 1mA
50 0 75 25 TEMPERATURE (C)
ADJ Pin Bias Current
100 90
ADJ PIN BIAS CURRENT (nA)
80 70 60 50 40 30 20 10 0 -50 -25 50 0 75 25 TEMPERATURE (C) 100 125
SHORT-CIRCUIT CURRENT (mA)
250 200 150 100 50 0 0 1 4 3 2 5 INPUT VOLTAGE (V) 6 7
1761 G31
CURRENT LIMIT (mA)
Reverse Output Current
100
REVERSE OUTPUT CURRENT (A)
REVERSE OUTPUT CURRENT (A)
TJ = 25C 90 VIN = 0V CURRENT FLOWS 80 INTO OUTPUT PIN 70 VOUT = VADJ (LT1761-BYP, -SD) 60 LT1761-1.5 LT1761-1.8 50 LT1761-2 40 LT1761-2.5 LT1761-2.8 30 LT1761-3 20 10 0 0 1 2 LT1761-5
LT1761-BYP LT1761-SD
RIPPLE REJECTION (dB)
LT1761-3.3 345678 OUTPUT VOLTAGE (V) 9 10
UW
100
1761 G27 1761 G30
SHDN Pin Input Current
1.0 0.9
SHDN Pin Input Current
1.4 VSHDN = 20V 1.2 1.0 0.8 0.6 0.4 0.2 0 -50 -25
125
0 0 1 2 345678 SHDN PIN VOLTAGE (V) 9 10
50 25 0 75 TEMPERATURE (C)
100
125
1761 G28
1761 G29
Current Limit
350 300 VOUT = 0V TJ = 25C 350 300 250 200 150 100 50
Current Limit
VIN = 7V VOUT = 0V
0 -50 -25
50 25 0 75 TEMPERATURE (C)
100
125
1761 G32
Reverse Output Current
25.0 VIN = 0V 22.5 VOUT = 1.22V (LT1761-BYP, -SD) VOUT = 1.5V (LT1761-1.5) 20.0 VOUT = 1.8V (LT1761-1.8) V = 2V (LT1761-2) 17.5 VOUT = 2.5V (LT1761-2.5) OUT VOUT = 2.8V (LT1761-2.8) 15.0 VOUT = 3V (LT1761-3) 12.5 VOUT = 3.3V (LT1761-3.3) VOUT = 5V (LT1761-5) 10.0 7.5 5.0 2.5 0 -50 -25 LT1761-1.5,-1.8,-2, -2.5,-2.8,-3,-3.3,-5 50 0 75 25 TEMPERATURE (C) 100 125 LT1761-BYP,-SD
Input Ripple Rejection
80 70 60 50 40 30 20 10 0 10 100 1k 10k FREQUENCY (Hz) 100k 1M
1761 G35
LT1761-BYP LT1761-5
IL = 100mA VIN = VOUT(NOMINAL) + 1V + 50mVRMS RIPPLE CBYP = 0
COUT = 10F
COUT = 1F
1761 G33
1761 G34
sn1761 1761fas
9
LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
LT1761-5 Input Ripple Rejection
80 70
RIPPLE REJECTION (dB)
CBYP = 0.01F CBYP = 1000pF
RIPPLE REJECTION (dB)
MINIMUM INPUT VOLTAGE (V)
60 50 40 30 20 10 0 10 100 1k 10k FREQUENCY (Hz) 100k 1M
1761 G36
CBYP = 100pF
IL = 100mA VIN = VOUT(NOMINAL) + 1V + 50mVRMS RIPPLE COUT = 10F
Load Regulation IL = 1mA to 50mA
0 -5 LT1761-BYP, -SD LT1761-1.5 LT1761-1.8 LT1761-2 LT1761-2.5 LT1761-2.8 LT1761-3 LT1761-3.3 0 -10
LOAD REGULATION (mV)
LOAD REGULATION (mV)
-10 -15 -20 -25 - 30 -35 -40 -50 -25 0 25 50 75 100
TEMPERATURE (C)
1761 G39
Output Noise Spectral Density
OUTPUT NOISE SPECTRAL DENSITY (V/Hz) OUTPUT NOISE SPECTRAL DENSITY (V/Hz)
10 LT1761-3.3 LT1761-2.8,-3 LT1761-2.5 LT1761-5 1 LT1761-BYP, -SD 0.1 COUT = 10F CBYP = 0 IL = 100mA 0.01 10 100 1k 10k FREQUENCY (Hz) 100k
1761 G41
OUTPUT NOISE (VRMS)
LT1761-1.5 LT1761-1.8 LT1761-2
10
UW
Input Ripple Rejection
80 70 2.0 60 50 40 30 20 10 VIN = VOUT (NOMINAL) + 1V + 0.5VP-P RIPPLE AT f = 120Hz IL = 50mA 0 25 50 75 100 125 2.5
LT1761-BYP, LT1761-SD Minimum Input Voltage
IL = 100mA 1.5 IL = 50mA 1.0
0.5
0 -50 -25
0 -50 -25
TEMPERATURE (C)
1761 G37
50 0 75 25 TEMPERATURE (C)
100
125
1761 G38
Load Regulation IL = 1mA to 100mA
LT1761-BYP, -SD LT1761-1.5 LT1761-1.8 LT1761-2 LT1761-2.5 LT1761-2.8 LT1761-3 LT1761-3.3
-20 -30 -40 -50 -60 -70 -80 -90
LT1761-5
LT1761-5
125
-100 -50 -25
0
25
50
75
100
125
TEMPERATURE (C)
1761 G40
Output Noise Spectral Density
10
RMS Output Noise vs Bypass Capacitor
140 LT1761-5 120 LT1761-3.3 LT1761-3 LT1761-2.8 LT1761-2.5 COUT = 10F IL = 100mA f = 10Hz TO 100kHz
LT1761-5 1
CBYP = 1000pF CBYP = 100pF
100 80 60 40
LT1761-BYP 0.1 CBYP = 0.01F COUT = 10F IL = 100mA 0.01 10 100 1k 10k FREQUENCY (Hz) 100k
1761 G42
LT1761-1.8, -2 20 0 10 100 CBYP (pF)
1761 G43
LT1761-1.5 LT1761-BYP 1k 10k
sn1761 1761fas
LT1761 Series TYPICAL PERFOR A CE CHARACTERISTICS
RMS Output Noise vs Load Current (10Hz to 11kHz)
160 140 OUTPUT NOISE (VRMS) 120 100 80 60 40 20 0 0.01 LT1761-5 LT1761-BYP 10 0.1 1 LOAD CURRENT (mA) 100
1761 G44
COUT = 10F CBYP = 0 CBYP = 0.01F
LT1761-5 VOUT 100V/DIV LT1761-BYP VOUT 100V/DIV
LT1761-5 10Hz to 100kHz Output Noise CBYP = 1000pF
VOUT 100V/DIV
COUT = 10F IL = 100mA
LT1761-5 Transient Response CBYP = 0
OUTPUT VOLTAGE DEVIATION (V)
OUTPUT VOLTAGE DEVIATION (V)
0.2 0.1 0 -0.1 -0.2
LOAD CURRENT (mA)
LOAD CURRENT (mA)
100 50 0 0 400 800 1200 TIME (s) 1600 2000
1761 G49
UW
LT1761-5 10Hz to 100kHz Output Noise CBYP = 0
LT1761-5 10Hz to 100kHz Output Noise CBYP = 100pF
1ms/DIV COUT = 10F IL = 100mA
1761 G45
1ms/DIV COUT = 10F IL = 100mA
1761 G46
LT1761-5 10Hz to 100kHz Output Noise CBYP = 0.01F
VOUT 100V/DIV
1ms/DIV
1761 G47
1ms/DIV COUT = 10F IL = 100mA
1761 G48
LT1761-5 Transient Response CBYP = 0.01F
0.04 0.02 0 -0.02 -0.04 VIN = 6V CIN = 10F COUT = 10F
VIN = 6V CIN = 10F COUT = 10F
100 50 0 0 20 40 60 80 100 120 140 160 180 200 TIME (s)
1761 G50
sn1761 1761fas
11
LT1761 Series
PI FU CTIO S
IN (Pin 1): Input. Power is supplied to the device through the IN pin. A bypass capacitor is required on this pin if the device is more than six inches away from the main input filter capacitor. In general, the output impedance of a battery rises with frequency, so it is advisable to include a bypass capacitor in battery-powered circuits. A bypass capacitor in the range of 1F to 10F is sufficient. The LT1761 regulators are designed to withstand reverse voltages on the IN pin with respect to ground and the OUT pin. In the case of a reverse input, which can happen if a battery is plugged in backwards, the device will act as if there is a diode in series with its input. There will be no reverse current flow into the regulator and no reverse voltage will appear at the load. The device will protect both itself and the load. GND (Pin 2): Ground. SHDN (Pin 3, Fixed/-SD Devices): Shutdown. The SHDN pin is used to put the LT1761 regulators into a low power shutdown state. The output will be off when the SHDN pin is pulled low. The SHDN pin can be driven either by 5V logic or open-collector logic with a pull-up resistor. The pull-up resistor is required to supply the pull-up current of the open-collector gate, normally several microamperes, and the SHDN pin current, typically 1A. If unused, the SHDN pin must be connected to VIN. The device will not function if the SHDN pin is not connected. For the LT1761-BYP, the SHDN pin is internally connected to VIN. BYP (Pins 3/4, Fixed/-BYP Devices): Bypass. The BYP pin is used to bypass the reference of the LT1761 regulators to achieve low noise performance from the regulator. The BYP pin is clamped internally to 0.6V (one VBE) from ground. A small capacitor from the output to this pin will bypass the reference to lower the output voltage noise. A maximum value of 0.01F can be used for reducing output voltage noise to a typical 20VRMS over a 10Hz to 100kHz bandwidth. If not used, this pin must be left unconnected. ADJ (Pin 4, Adjustable Devices Only): Adjust Pin. For the adjustable LT1761, this is the input to the error amplifier. This pin is internally clamped to 7V. It has a bias current of 30nA which flows into the pin (see curve of ADJ Pin Bias Current vs Temperature in the Typical Performance Characteristics section). The ADJ pin voltage is 1.22V referenced to ground and the output voltage range is 1.22V to 20V. OUT (Pin 5): Output. The output supplies power to the load. A minimum output capacitor of 1F is required to prevent oscillations. Larger output capacitors will be required for applications with large transient loads to limit peak voltage transients. See the Applications Information section for more information on output capacitance and reverse output characteristics.
APPLICATIO S I FOR ATIO
The LT1761 series are 100mA low dropout regulators with micropower quiescent current and shutdown. The devices are capable of supplying 100mA at a dropout voltage of 300mV. Output voltage noise can be lowered to 20VRMS over a 10Hz to 100kHz bandwidth with the addition of a 0.01F reference bypass capacitor. Additionally, the reference bypass capacitor will improve transient response of the regulator, lowering the settling time for transient load conditions. The low operating quiescent current (20A) drops to less than 1A in shutdown. In addition to the low quiescent current, the LT1761 regulators incorporate several protection features which make them ideal for use in battery-powered systems. The devices are protected against both reverse input and reverse output voltages. In battery backup applications where the output can be held
12
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up by a backup battery when the input is pulled to ground, the LT1761-X acts like it has a diode in series with its output and prevents reverse current flow. Additionally, in dual supply applications where the regulator load is returned to a negative supply, the output can be pulled below ground by as much as 20V and still allow the device to start and operate. Adjustable Operation The adjustable version of the LT1761 has an output voltage range of 1.22V to 20V. The output voltage is set by the ratio of two external resistors as shown in Figure 1. The device servos the output to maintain the ADJ pin voltage at 1.22V referenced to ground. The current in R1 is then
sn1761 1761fas
LT1761 Series
APPLICATIO S I FOR ATIO
equal to 1.22V/R1 and the current in R2 is the current in R1 plus the ADJ pin bias current. The ADJ pin bias current, 30nA at 25C, flows through R2 into the ADJ pin. The output voltage can be calculated using the formula in Figure 1. The value of R1 should be no greater than 250k to minimize errors in the output voltage caused by the ADJ pin bias current. Note that in shutdown the output is turned off and the divider current will be zero. Curves of ADJ Pin Voltage vs Temperature and ADJ Pin Bias Current vs Temperature appear in the Typical Performance Characteristics. The adjustable device is tested and specified with the ADJ pin tied to the OUT pin for an output voltage of 1.22V. Specifications for output voltages greater than 1.22V will be proportional to the ratio of the desired output voltage to 1.22V: VOUT/1.22V. For example, load regulation for an output current change of 1mA to 100mA is -1mV typical at VOUT = 1.22V. At VOUT = 12V, load regulation is: (12V/1.22V)(-1mV) = - 9.8mV
IN VIN OUT VOUT
+
LT1761 ADJ GND R1
1761 F01
R2
R2 VOUT = 1.22V 1 + + IADJ R2 R1 VADJ = 1.22V IADJ = 30nA AT 25C
OUTPUT RANGE = 1.22V TO 20V
Figure 1. Adjustable Operation
Bypass Capacitance and Low Noise Performance The LT1761 regulators may be used with the addition of a bypass capacitor from VOUT to the BYP pin to lower output voltage noise. A good quality low leakage capacitor is recommended. This capacitor will bypass the reference of the regulator, providing a low frequency noise pole. The noise pole provided by this bypass capacitor will lower the output voltage noise to as low as 20VRMS with the addition of a 0.01F bypass capacitor. Using a bypass capacitor has the added benefit of improving transient response. With no bypass capacitor and a 10F output capacitor, a 10mA to 100mA load step will settle to within 1% of its final value in less than 100s. With the addition of a 0.01F bypass capacitor, the output will stay within 1% for a 10mA to 100mA load step (see LT1761-5 Transient Reponse in
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Typical Performance Characteristics section). However, regulator start-up time is inversely proportional to the size of the bypass capacitor, slowing to 15ms with a 0.01F bypass capacitor and 10F output capacitor. Output Capacitance and Transient Response The LT1761 regulators are designed to be stable with a wide range of output capacitors. The ESR of the output capacitor affects stability, most notably with small capacitors. A minimum output capacitor of 1F with an ESR of 3 or less is recommended to prevent oscillations. The LT1761-X is a micropower device and output transient response will be a function of output capacitance. Larger values of output capacitance decrease the peak deviations and provide improved transient response for larger load current changes. Bypass capacitors, used to decouple individual components powered by the LT1761-X, will increase the effective output capacitor value. With larger capacitors used to bypass the reference (for low noise operation), larger values of output capacitors are needed. For 100pF of bypass capacitance, 2.2F of output capacitor is recommended. With a 330pF bypass capacitor or larger, a 3.3F output capacitor is recommended. The shaded region of Figure 2 defines the region over which the LT1761 regulators are stable. The minimum ESR needed is defined by the amount of bypass capacitance used, while the maximum ESR is 3. Extra consideration must be given to the use of ceramic capacitors. Ceramic capacitors are manufactured with a variety of dielectrics, each with different behavior across temperature and applied voltage. The most common
4.0 3.5 3.0 STABLE REGION 2.5 2.0 1.5 1.0 0.5 0 1 3 2 4 5 6 7 8 9 10 OUTPUT CAPACITANCE (F)
1761 F02
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( )( )
CBYP = 0 CBYP = 100pF CBYP = 330pF CBYP > 3300pF
Figure 2. Stability
sn1761 1761fas
13
LT1761 Series
APPLICATIO S I FOR ATIO
dielectrics used are Z5U, Y5V, X5R and X7R. The Z5U and Y5V dielectrics are good for providing high capacitances in a small package, but exhibit strong voltage and temperature coefficients as shown in Figures 3 and 4. When used with a 5V regulator, a 10F Y5V capacitor can exhibit an effective value as low as 1F to 2F over the operating temperature range. The X5R and X7R dielectrics result in more stable characteristics and are more suitable for use as the output capacitor. The X7R type has better stability across temperature, while the X5R is less expensive and is available in higher values. Voltage and temperature coefficients are not the only sources of problems. Some ceramic capacitors have a piezoelectric response. A piezoelectric device generates voltage across its terminals due to mechanical stress, similar to the way a piezoelectric accelerometer or
20 0
CHANGE IN VALUE (%)
BOTH CAPACITORS ARE 16V, 1210 CASE SIZE, 10F X5R
-20 -40 -60 Y5V -80
-100
0
2
4
8 6 10 12 DC BIAS VOLTAGE (V)
14
16
1761 F03
Figure 3. Ceramic Capacitor DC Bias Characteristics
40 20
CHANGE IN VALUE (%)
0 -20 -40 -60 -80 BOTH CAPACITORS ARE 16V, 1210 CASE SIZE, 10F 50 25 75 0 TEMPERATURE (C) Y5V
X5R
-100 -50 -25
100
125
1761 F04
Figure 4. Ceramic Capacitor Temperature Characteristics
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microphone works. For a ceramic capacitor the stress can be induced by vibrations in the system or thermal transients. The resulting voltages produced can cause appreciable amounts of noise, especially when a ceramic capacitor is used for noise bypassing. A ceramic capacitor produced Figure 5's trace in response to light tapping from a pencil. Similar vibration induced behavior can masquerade as increased output voltage noise.
LT1761-5 COUT = 10F CBYP = 0.01F ILOAD = 100mA VOUT 500V/DIV 100ms/DIV
1761 F05
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Figure 5. Noise Resulting from Tapping on a Ceramic Capacitor
Thermal Considerations The power handling capability of the device will be limited by the maximum rated junction temperature (125C). The power dissipated by the device will be made up of two components: 1. Output current multiplied by the input/output voltage differential: (IOUT)(VIN - VOUT), and 2. GND pin current multiplied by the input voltage: (IGND)(VIN). The ground pin current can be found by examining the GND Pin Current curves in the Typical Performance Characteristics section. Power dissipation will be equal to the sum of the two components listed above. The LT1761 series regulators have internal thermal limiting designed to protect the device during overload conditions. For continuous normal conditions, the maximum junction temperature rating of 125C must not be exceeded. It is important to give careful consideration to all sources of thermal resistance from junction to ambient. Additional heat sources mounted nearby must also be considered. For surface mount devices, heat sinking is accomplished by using the heat spreading capabilities of the PC board
sn1761 1761fas
LT1761 Series
APPLICATIONS INFORMATION
and its copper traces. Copper board stiffeners and plated through-holes can also be used to spread the heat generated by power devices. The following table lists thermal resistance for several different board sizes and copper areas. All measurements were taken in still air on 3/32" FR-4 board with one ounce copper.
Table 1. Measured Thermal Resistance
COPPER AREA TOPSIDE* BACKSIDE 2500mm 225mm
2
BOARD AREA 2500mm2 2500mm2 2500mm
2
THERMAL RESISTANCE (JUNCTION-TO-AMBIENT) 125C/W 125C/W 130C/W 135C/W 150C/W
2500mm 2500mm
2
1000mm2
2
2500mm2
2
100mm2 50mm2
2500mm2 2500mm2
2500mm2 2500mm2
*Device is mounted on topside.
Calculating Junction Temperature Example: Given an output voltage of 3.3V, an input voltage range of 4V to 6V, an output current range of 0mA to 50mA and a maximum ambient temperature of 50C, what will the maximum junction temperature be? The power dissipated by the device will be equal to: IOUT(MAX)(VIN(MAX) - VOUT) + IGND(VIN(MAX)) where, IOUT(MAX) = 50mA VIN(MAX) = 6V IGND at (IOUT = 50mA, VIN = 6V) = 1mA So, P = 50mA(6V - 3.3V) + 1mA(6V) = 0.14W The thermal resistance will be in the range of 125C/W to 150C/W depending on the copper area. So the junction temperature rise above ambient will be approximately equal to: 0.14W(150C/W) = 21.2C The maximum junction temperature will then be equal to the maximum junction temperature rise above ambient plus the maximum ambient temperature or: TJMAX = 50C + 21.2C = 71.2C
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Protection Features The LT1761 regulators incorporate several protection features which make them ideal for use in battery-powered circuits. In addition to the normal protection features associated with monolithic regulators, such as current limiting and thermal limiting, the devices are protected against reverse input voltages, reverse output voltages and reverse voltages from output to input. Current limit protection and thermal overload protection are intended to protect the device against current overload conditions at the output of the device. For normal operation, the junction temperature should not exceed 125C. The input of the device will withstand reverse voltages of 20V. Current flow into the device will be limited to less than 1mA (typically less than 100A) and no negative voltage will appear at the output. The device will protect both itself and the load. This provides protection against batteries which can be plugged in backward. The output of the LT1761-X can be pulled below ground without damaging the device. If the input is left open circuit or grounded, the output can be pulled below ground by 20V. For fixed voltage versions, the output will act like a large resistor, typically 500k or higher, limiting current flow to typically less than 100A. For adjustable versions, the output will act like an open circuit; no current will flow out of the pin. If the input is powered by a voltage source, the output will source the short-circuit current of the device and will protect itself by thermal limiting. In this case, grounding the SHDN pin will turn off the device and stop the output from sourcing the short-circuit current. The ADJ pin of the adjustable device can be pulled above or below ground by as much as 7V without damaging the device. If the input is left open circuit or grounded, the ADJ pin will act like an open circuit when pulled below ground and like a large resistor (typically 100k) in series with a diode when pulled above ground. In situations where the ADJ pin is connected to a resistor divider that would pull the ADJ pin above its 7V clamp voltage if the output is pulled high, the ADJ pin input current must be limited to less than 5mA. For example, a resistor divider is used to provide a regulated 1.5V output from the 1.22V reference when the output is forced to 20V.
sn1761 1761fas
15
LT1761 Series
The top resistor of the resistor divider must be chosen to limit the current into the ADJ pin to less than 5mA when the ADJ pin is at 7V. The 13V difference between output and ADJ pin divided by the 5mA maximum current into the ADJ pin yields a minimum top resistor value of 2.6k. In circuits where a backup battery is required, several different input/output conditions can occur. The output voltage may be held up while the input is either pulled to ground, pulled to some intermediate voltage or is left open circuit. Current flow back into the output will follow the curve shown in Figure 6. When the IN pin of the LT1761-X is forced below the OUT pin or the OUT pin is pulled above the IN pin, input current will typically drop to less than 2A. This can happen if the input of the device is connected to a discharged (low voltage) battery and the output is held up by either a backup battery or a second regulator circuit. The state of the SHDN pin will have no effect on the reverse output current when the output is pulled above the input.
100 TJ = 25C 90 VIN = 0V CURRENT FLOWS 80 INTO OUTPUT PIN 70 VOUT = VADJ (LT1761-BYP, -SD) 60 LT1761-1.5 LT1761-1.8 50 LT1761-2 40 LT1761-2.5 LT1761-2.8 30 LT1761-3 20 10 0 0 1 2 LT1761-5 345678 OUTPUT VOLTAGE (V) 9 10 LT1761-BYP LT1761-SD
REVERSE OUTPUT CURRENT (A)
LT1761-3.3
1761 F06
Figure 6. Reverse Output Current
PACKAGE DESCRIPTIO
S5 Package 5-Lead Plastic SOT-23
(LTC DWG # 05-08-1633)
0.35 - 0.55 (0.014 - 0.022)
NOTE: 1. DIMENSIONS ARE IN MILLIMETERS 2. DIMENSIONS ARE INCLUSIVE OF PLATING 3. DIMENSIONS ARE EXCLUSIVE OF MOLD FLASH AND METAL BURR 4. MOLD FLASH SHALL NOT EXCEED 0.254mm 5. PACKAGE EIAJ REFERENCE IS SC-74A (EIAJ)
RELATED PARTS
PART NUMBER LT1120 LT1121 LT1129 LT1175 LT1521 LT1529 LT1762 Series LT1763 Series LTC1928 LT1962 Series LT1963 LT1764 LTC3404 DESCRIPTION 125mA Low Dropout Regulator with 20A IQ 150mA Micropower Low Dropout Regulator 700mA Micropower Low Dropout Regulator 500mA Negative Low Dropout Micropower Regulator 300mA Low Dropout Micropower Regulator with Shutdown 3A Low Dropout Regulator with 50A IQ 150mA, Low Noise, LDO Micropower Regulator 500mA, Low Noise, LDO Micropower Regulator Doubler Charge Pump with Low Noise Linear Regulator 300mA, Low Noise, LDO Micropower Regulator 1.5A, Low Noise, Fast Transient Response LDO 3A, Low Noise, Fast Transient Response LDO High Efficiency Synchronous Step-Down Switching Regulator COMMENTS Includes 2.5V Reference and Comparator 30A IQ, SOT-223 Package 50A Quiescent Current 45A IQ, 0.26V Dropout Voltage, SOT-223 Package 15A IQ, Reverse Battery Protection 500mV Dropout Voltage 25A Quiescent Current, 20VRMS Noise 30A Quiescent Current, 20VRMS Noise Low Output Noise: 60VRMS (100kHz BW) 30A Quiescent Current, 20VRMS Noise 40VRMS, SOT-223 Package 40VRMS, 340mV Dropout Voltage Burst ModeTM Operation, Monolithic, 100% Duty Cycle
sn1761 1761fas
Burst Mode is a trademark of Linear Technology Corporation.
16
Linear Technology Corporation
1630 McCarthy Blvd., Milpitas, CA 95035-7417
(408)432-1900 q FAX: (408) 434-0507 q www.linear-tech.com
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Dimensions in inched (millimeters) unless otherwise noted.
2.60 - 3.00 (0.102 - 0.118) 1.50 - 1.75 (0.059 - 0.069) 0.00 - 0.15 (0.00 - 0.006) 0.90 - 1.45 (0.035 - 0.057) 2.80 - 3.00 (0.110 - 0.118) (NOTE 3)
0.09 - 0.20 (0.004 - 0.008) (NOTE 2)
0.35 - 0.50 0.90 - 1.30 (0.014 - 0.020) (0.035 - 0.051) FIVE PLACES (NOTE 2)
1.90 (0.074) REF
0.95 (0.037) REF
S5 SOT-23 0599
LT/TP 0401 2K REV A * PRINTED IN USA
(c) LINEAR TECHNOLOGY CORPORATION 1999


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