Maxim Integrated MAX16016LTBR+T
- MAX16016LTBR+T
- Maxim Integrated
- IC SUPERVISOR 1 CHANNEL 10TDFN
- PMIC - Supervisors
- MAX16016LTBR+T Datasheet
- 10-WFDFN Exposed Pad
- Tape & Reel (TR)
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Lead free / RoHS Compliant - 10872
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What is MAX16016LTBR+T
Maxim Integrated Part Number MAX16016LTBR+T(PMIC - Supervisors), developed and manufactured by Maxim Integrated, distributed globally by Jinftry. We distribute various electronic components from world-renowned brands and provide one-stop services, making us a trusted global electronic component distributor.
MAX16016LTBR+T is one of the part numbers distributed by Jinftry, and you can learn about its specifications/configurations, package/case, Datasheet, and other information here. Electronic components are affected by supply and demand, and prices fluctuate frequently. If you have a demand, please do not hesitate to send us an RFQ or email us immediately [email protected] Please inquire about the real-time unit price, Data Code, Lead time, payment terms, and any other information you would like to know. We will do our best to provide you with a quotation and reply as soon as possible.
MAX16016LTBR+T Specifications
- Part NumberMAX16016LTBR+T
- CategoryPMIC - Supervisors
- ManufacturerMaxim Integrated
- DescriptionIC SUPERVISOR 1 CHANNEL 10TDFN
- PackageTape & Reel (TR)
- Series-
- TypeSimple Reset/Power-On Reset
- Operating Temperature-40°C ~ 85°C (TA)
- Mounting TypeSurface Mount
- Package / Case10-WFDFN Exposed Pad
- Supplier Device Package10-TDFN (3x3)
- Number of Voltages Monitored1
- OutputPush-Pull, Totem Pole
- ResetActive Low
- Reset Timeout145ms Minimum
- Voltage - Threshold2.63V
Application of MAX16016LTBR+T
MAX16016LTBR+T Datasheet
MAX16016LTBR+T Datasheet , Tape & Reel (TR),Simple Reset/Power-On Reset,-40°C ~ 85°C (TA),Surface Mount,10-WFDFN Exposed Pad,10-TDFN (3x3),1,Push-Pull, Totem Pole,Active Low,145ms Minimum,2.63V
MAX16016LTBR+T Classification
PMIC - Supervisors
FAQ about PMIC - Supervisors
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1. What is a monitoring IC?
A monitoring IC is an integrated circuit used to ensure the correct operation of a microprocessor-based system. It mainly monitors during power-on and shutdown, and when entering or exiting shutdown or sleep mode to ensure the stability and reliability of the system. Monitoring ICs can provide a variety of functions, including power-on reset, backup battery management, memory write protection, low voltage warning, and software watchdog. Common monitoring ICs include AD8206YRZ, INA194AIDBVR, MAX9938FEUK+, etc. These chips are widely used in various electronic devices to ensure the stable operation of the system.
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2. What is PMIC in embedded systems?
PMIC plays a very important role in embedded systems. It is responsible for monitoring and controlling the power status of the system, can manage multiple power rails, and provide functions such as voltage regulation, battery charging, and power sequencing. Through these functions, PMIC ensures stable operation of the system and effective use of power.
Depending on the functions and applications, PMIC can be divided into the following basic categories: linear regulators, switching regulators, battery charging management, DC/DC converters, and multi-phase power management. These categories help meet the diverse needs of different electronic devices for power management.
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3. How to test PMIC(Power Management Integrated Circuit)?
The core steps of testing PMIC include observing external features, conducting comprehensive professional testing, and measuring PSRR.
First, observing external features is the first step in testing PMIC. Rationally observe the quality standards of power management chips, including their appearance, logos, etc., to ensure that the chip meets basic quality requirements.
Second, conduct comprehensive professional testing. Select representative specification models and conduct comprehensive tests on the power management chip, including electrical characteristics test, functional test and environmental adaptability test. The electrical characteristics test covers the input voltage range test to ensure that the chip works normally under different input voltages.
Finally, measure the PSRR (power supply rejection ratio). PSRR is an important parameter of PMIC, indicating how stable the input is when the power supply voltage changes. By measuring PSRR, the resistance of PMIC to power supply voltage changes can be evaluated.
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