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TLV75901 Series

1-A, low-IQ, high-accuracy, adjustable ultra-low-dropout voltage regulator with enable

Manufacturer: Texas Instruments

Catalog(1 parts)

PartProtection FeaturesVoltage - Input (Max)Operating TemperatureOperating TemperatureControl FeaturesOutput TypeVoltage Dropout (Max)Current - Quiescent (Iq)Supplier Device PackageVoltage - Output (Max)Number of RegulatorsCurrent - OutputPSRRPSRRMounting TypeVoltage - Output (Min/Fixed)Output Configuration
Texas Instruments
TLV75901PDRVT
Linear Voltage Regulator IC Positive Adjustable 1 Output 1A 6-WSON (2x2)
Over Temperature, Short Circuit, Soft Start
6 V
125 °C
-40 °C
Enable
Adjustable
0.22499999403953552 V
0.000035000000934815034 A
6-WSON (2x2)
5.5 V
1 ul
1 A
30 ul
50 ul
Surface Mount
0.550000011920929 V
Positive

Key Features

Input Voltage Range: 1.5 V to 6.0 VAdjustable Output Voltage:0.55 V to 5.5 VVery Low Dropout:225 mV (max) at 1 A (3.3 VOUT)High Output Accuracy:0.7%, Typical1%, Maximum Over Temperature (85°C)IQ: 25 µA (Typical)Built-In Soft-Start With Monotonic VOUTRisePackage:2-mm × 2-mm 6-Pin WSON (DRV)Active Output DischargeInput Voltage Range: 1.5 V to 6.0 VAdjustable Output Voltage:0.55 V to 5.5 VVery Low Dropout:225 mV (max) at 1 A (3.3 VOUT)High Output Accuracy:0.7%, Typical1%, Maximum Over Temperature (85°C)IQ: 25 µA (Typical)Built-In Soft-Start With Monotonic VOUTRisePackage:2-mm × 2-mm 6-Pin WSON (DRV)Active Output Discharge

Description

AI
The TLV759P is an adjustable 1-A low-dropout (LDO) regulator. This device is available in a small, 6-pin,2-mm × 2-mm WSON package and consumes very low quiescent current and provides fast line and load transient performance. The TLV759P features an ultra-low dropout of 225 mV at 1 A that can help improve the power efficiency of the system. The TLV759P is optimized for a wide variety of applications by supporting an input voltage range from 1.5 V to 6.0 V and an externally adjustable output range of 0.55 V to 5.5 V. The low output voltage enables this LDO to power the modern microcontrollers with lower core voltages. Additionally, the TLV759P has a low IQwith enable functionality to minimize standby power. This device features an internal soft-start to lower the inrush current, which provides a controlled voltage to the load and minimizes the input voltage drop during start up. The TLV759P is stable with small ceramic output capacitors, allowing for a small overall solution size. A precision band-gap and error amplifier provides a high accuracy of 0.7% max at 25ºC and 1% max over temperature (85ºC). This device includes integrated thermal shutdown, current limit, and undervoltage lockout (UVLO) features. The TLV759P has an internal foldback current limit that helps reduce the thermal dissipation during short-circuit events. The TLV759P is an adjustable 1-A low-dropout (LDO) regulator. This device is available in a small, 6-pin,2-mm × 2-mm WSON package and consumes very low quiescent current and provides fast line and load transient performance. The TLV759P features an ultra-low dropout of 225 mV at 1 A that can help improve the power efficiency of the system. The TLV759P is optimized for a wide variety of applications by supporting an input voltage range from 1.5 V to 6.0 V and an externally adjustable output range of 0.55 V to 5.5 V. The low output voltage enables this LDO to power the modern microcontrollers with lower core voltages. Additionally, the TLV759P has a low IQwith enable functionality to minimize standby power. This device features an internal soft-start to lower the inrush current, which provides a controlled voltage to the load and minimizes the input voltage drop during start up. The TLV759P is stable with small ceramic output capacitors, allowing for a small overall solution size. A precision band-gap and error amplifier provides a high accuracy of 0.7% max at 25ºC and 1% max over temperature (85ºC). This device includes integrated thermal shutdown, current limit, and undervoltage lockout (UVLO) features. The TLV759P has an internal foldback current limit that helps reduce the thermal dissipation during short-circuit events.