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TPS621361RGXR
Integrated Circuits (ICs)

TPS621361RGXR

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Texas Instruments

3-17V 4.0A STEP-DOWN CONVERTER WITH 1% ACCURACY AND PFM/FORCED-PWM IN 2X3QFN

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TPS621361RGXR
Integrated Circuits (ICs)

TPS621361RGXR

Active
Texas Instruments

3-17V 4.0A STEP-DOWN CONVERTER WITH 1% ACCURACY AND PFM/FORCED-PWM IN 2X3QFN

Technical Specifications

Parameters and characteristics for this part

SpecificationTPS621361RGXR
Current - Output4 A
Frequency - Switching1 MHz
FunctionStep-Down
Mounting TypeSurface Mount
Number of Outputs1
Operating Temperature [Max]125 ¯C
Operating Temperature [Min]-40 °C
Output ConfigurationPositive
Output TypeAdjustable
Package / Case11-VFQFN
Supplier Device Package11-VQFN-HR (2x3)
Synchronous RectifierTrue
TopologyBuck
Voltage - Input (Max) [Max]17 V
Voltage - Input (Min) [Min]3 V
Voltage - Output (Max) [Max]12 V
Voltage - Output (Min/Fixed)0.8 V

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyCut Tape (CT) 1$ 1.85
10$ 1.66
25$ 1.57
100$ 1.33
250$ 1.25
500$ 1.10
1000$ 0.91
Digi-Reel® 1$ 1.85
10$ 1.66
25$ 1.57
100$ 1.33
250$ 1.25
500$ 1.10
1000$ 0.91
Tape & Reel (TR) 3000$ 0.85
6000$ 0.81
Texas InstrumentsLARGE T&R 1$ 1.39
100$ 1.15
250$ 0.82
1000$ 0.62

Description

General part information

TPS621361 Series

The TPS62136 and TPS621361 are high efficiency and easy to use synchronous step-down DC-DC converters, based on the DCS-Control™ Topology. The devices wide input voltage range of 3-V to 17-V makes it suitable for multi-cell Li-Ion as well as 12-V intermediate supply rails. The devices provide 4-A continuous output current. The TPS62136 automatically enters Power Save Mode at light loads to maintain high efficiency across the whole load range. With that, the device is well suited for applications that require connected standby performance, like ultra low power computers. With the MODE pin set to low, the switching frequency of the device is adapted automatically based on the input and output voltage. This technique is called Automatic Efficiency Enhancement (AEE™) and maintains high conversion efficiency over the whole operation range. It provides a 1% output voltage accuracy in PWM mode and therefore enables the design of a power supply with high output voltage accuracy.

The device has a typical quiescent current of 18 µA. In shutdown mode the current is typically 1 µA and the output is actively discharged for TPS62136 while the output voltage discharge feature is disabled in TPS621361.

The TPS62136 is available as an adjustable version, packaged in a 3-mm x 2-mm VQFN package.

Documents

Technical documentation and resources

Using the TPS62150 in a Split Rail Topology

Application note

Minimize the impact of the MLCC shortage on your power application

Technical article

Methods of output-voltage adjustment for DC/DC converters

Analog Design Journal

Understanding the Absolute Maximum Ratings of the SW Node (Rev. A)

Application note

Achieving a clean startup by using a DC/DC converter with a precise enable-pin threshold

Analog Design Journal

IQ: What it is, what it isn’t, and how to use it

Analog Design Journal

QFN and SON PCB Attachment (Rev. C)

Application note

Performing Accurate PFM Mode Efficiency Measurements (Rev. A)

Application note

High-efficiency, low-ripple DCS-Control offers seamless PWM/pwr-save transitions

Analog Design Journal

TPS62136, TPS621361 1-MHz High Accuracy 3-V to 17-V 4-A Step-Down Converters with DCS ControlTM datasheet

Data sheet

Output accuracy varies with temperature – 1% is not always 1%

Technical article

TPS6213xEVM Buck Converter Evaluation Module User's Guide (Rev. B)

EVM User's guide

Using the TPS6215x in an Inverting Buck-Boost Topology.. (Rev. D)

Application note

Voltage Margining Using the TPS62130

Application note

Quick Reference Guide To TI Buck Switching DC/DC Application Notes (Rev. B)

Application note

How to modify a step-down converter to the inverting buck-boost topology

Technical article

Understanding 100% mode in low-power DC/DC converters

Analog Design Journal

Understanding frequency variation in the DCS-Control(TM) topology

Analog Design Journal

Feedforward Capacitor to Improve Stability and Bandwidth of TPS621/821-Family (Rev. A)

Application note

Choosing an Appropriate Pull-up/Pull-down Resistor for Open Drain Outputs

Application note

Step-Down LED Driver With Dimming With the TPS621-Family and TPS821-Family (Rev. A)

Application note

Basic Calculation of a Buck Converter's Power Stage (Rev. B)

Application note

Sequencing and Tracking With the TPS621-Family and TPS821-Family (Rev. A)

Application note

Testing tips for applying external power to supply outputs without an input voltage

Analog Design Journal

Design considerations for a resistive feedback divider in a DC/DC converter

Analog Design Journal

Five steps to a great PCB layout for a step-down converter

Analog Design Journal

How to Measure the Control Loop of DCS-Control Devices (Rev. A)

Application note