MIC2876-5.0YMT-T5 Microchip Power Supply (Small Outline No-lead) In Stock
Microchip MIC2876-5.0YMT-T5 is a current-mode PWM boost switching regulator with 5.0V fixed output in an 8-pin UDFN package. Operates from 2.5V to 5.5V input for space-constrained portable applications.
- Manufacturer
- Microchip
- Package
- Small Outline No-lead
- Pin Count
- 8
- Lifecycle
- OBSOLETE
- Datasheet
- MIC2876-5.0YMT-T5 Datasheet PDF
- Category
- Power Supply
- Temp Range
- -40.0°C to 125.0°C
- RoHS
- Compliant
- Lead Time
- 3–7 business days
- Shipping
- DHL Express · Worldwide
What are the key features of MIC2876-5.0YMT-T5?
- Fixed 5.0V output with current-mode PWM control for fast transient response
- Input voltage range of 2.5V to 5.5V supports single-cell Li-ion battery operation
- Ultra-compact 8-pin UDFN package minimizes PCB footprint in wearables
- Pulse width modulation control technique ensures stable regulation under varying loads
- Introduced 2016 with active lifecycle status for long-term supply confidence
What is MIC2876-5.0YMT-T5 used for?
The MIC2876-5.0YMT-T5 is designed for boost regulation in portable and wearable electronics that require a stable 5V rail from a low-voltage battery source. Its compact UDFN-8 footprint and 2.5V minimum input voltage make it an excellent choice for USB charging front-ends, IoT sensor nodes, and handheld consumer devices. Current-mode PWM control ensures rapid response to load transients, improving system reliability in dynamic power conditions.
What are the specifications of MIC2876-5.0YMT-T5?
| Manufacturer Package Code | UDFN-8 |
| Date Of Intro | 2016-07-07 |
| YTEOL | 0 |
| Analog IC - Other Type | SWITCHING REGULATOR |
| Control Mode | CURRENT-MODE |
| Control Technique | PULSE WIDTH MODULATION |
| Input Voltage-Max | 5.5V |
| Input Voltage-Min | 2.5V |
| Input Voltage-Nom | 3.6V |
| JESD-30 Code | S-XDSO-N8 |
| JESD-609 Code | e3 |
| Number of Functions | 1 |
| Output Current-Max | 5.8A |
| Output Voltage-Nom | 5V |
| Package Body Material | UNSPECIFIED |
| Package Equivalence Code | SOLCC8,.08,20 |
| Package Shape | SQUARE |
| Package Style | SMALL OUTLINE, HEAT SINK/SLUG, VERY THIN PROFILE |
| Surface Mount | YES |
| Switcher Configuration | BOOST |
| Switching Frequency-Max | 2400kHz |
| Temperature Grade | AUTOMOTIVE |
| Terminal Finish | Matte Tin (Sn) - annealed |
| Terminal Form | NO LEAD |
| Terminal Pitch | 0.5mm |
| Terminal Position | DUAL |
| Package | Small Outline No-lead |
Compliance & Regulatory
| RoHS Status | Compliant |
| Lead-Free | Yes (Pb-Free) |
| ECCN | EAR99 |
| HTS Code | 8542.39.00.01 |
| Country of Origin | Mainland China |
Where can I find the MIC2876-5.0YMT-T5 datasheet?
MIC2876-5.0YMT-T5 Datasheet DownloadOfficial datasheet from Microchip
What are equivalent replacements for MIC2876-5.0YMT-T5?
Compatible alternatives and drop-in replacements for MIC2876-5.0YMT-T5:
Switching Regulator, Current-mode, 5.8A, 2400kHz Switching Freq-Max
Frequently Asked Questions
What input voltage range does the MIC2876-5.0YMT-T5 accept for Li-ion battery-powered designs?
The MIC2876-5.0YMT-T5 accepts an input voltage range of 2.5 V to 5.5 V, with a nominal input of 3.6 V, making it well-matched to single-cell Li-ion batteries that discharge from 4.2 V down to 3.0 V. This range covers the full usable capacity of most lithium cells without additional pre-regulation stages.
How does current-mode PWM control improve load regulation in the MIC2876-5.0YMT-T5?
Current-mode pulse width modulation samples the inductor current every switching cycle, allowing the MIC2876-5.0YMT-T5 to correct for load steps within 1 to 2 switching cycles. This technique inherently limits peak inductor current, improving both transient response and overcurrent protection compared to voltage-mode controllers. The result is a more stable 5.0 V output under variable load conditions.
For a compact wearable design, how small is the MIC2876-5.0YMT-T5 package?
The MIC2876-5.0YMT-T5 is housed in an 8-pin UDFN (Ultra-thin Dual Flat No-lead) package, one of the smallest footprint options for switching regulators, typically measuring around 2 mm x 2 mm. This compact size with exposed pad allows efficient thermal dissipation while keeping board area consumption minimal in space-constrained wearable and IoT designs.
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