WMSIC Electronic Components

MICROCHIP MIC5504-1.8YM5-TR MIC5504

ModelMIC5504-1.8YM5-TR
PackageSOT-23-5
BrandMICROCHIP
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration Date code within 2 years

Available for RFQ

Technical data

Product details

20 specifications

Core information

Product name
MICROCHIP MIC5504-1.8YM5-TR
Type
MICROCHIP
Unit
Electronic Component
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
380mV@(300mA)
Electronic Component
MICROCHIP
Electronic Component
175uVrms
Electronic Component
MIC5504-1.8YM5-TR
Electronic Component
1
Package
SOT-23-5
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.042g
Electronic Component
1
Features
Output
Electronic Component
BM0257561445
Operating Temperature
40℃~+125℃@(Tj)
Operating Voltage
5.5V
Output
Electronic Component

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

MIC5504-1.8YM5-TR 产品概述

MIC5504-1.8YM5-TR 是 MICROCHIP(美国微芯)推出的一款高性能、低噪声固定输出线性稳压器(LDO)。该器件在小体积 SOT-23-5 封装中提供 1.8V 输出,支持高达 300mA 的负载电流,适合对电源噪声和电源纹波抑制(PSRR)有较高要求的便携和工业类电子设备。

一、主要参数与功能特性

  • 输出极性:正极
  • 工作电压:最大 5.5V(器件允许的输入电压范围以内)
  • 输出电压:固定 1.8V
  • 输出电流:最大 300mA
  • 压差(Dropout):380mV @ 300mA
  • 静态电流(Iq):55 µA(典型,静态/待机时电流)
  • 噪声:175 µVrms(典型)
  • 电源纹波抑制比(PSRR):60 dB @ 1 kHz
  • 保护与控制:输出放电、使能控制(EN)、过流保护(OCP)、热关断(TSD)
  • 输出类型:固定输出(1.8V)
  • 输出通道:1 路
  • 工作温度范围:-40℃ ~ +125℃(结温 Tj)
  • 封装:SOT-23-5

二、优势与设计亮点

  • 低噪声与良好 PSRR:175 µVrms 的输出噪声及 1 kHz 下 60 dB 的 PSRR,使其非常适合对模拟信号、参考电压、ADC 前端或 RF/混合信号通道要求严格的电源系统。
  • 低静态电流:55 µA 静态电流在待机或低功耗场景下有利于延长电池寿命,适用于便携式与电池供电设备。
  • 完善的保护机制:内建的过流保护与热关断提高系统可靠性,输出放电功能可以在禁能态(EN = 低)时迅速将输出拉低,便于系统重启与确定上电状态。
  • 小型封装:SOT-23-5 便于在空间受限的应用中实现紧凑的电源布局。

三、典型应用场景

  • 手机周边、可穿戴设备与便携终端的 1.8V 数字/模拟供电
  • MCU、传感器和低噪声 ADC 的参考与前端供电
  • 无线模块(射频前端滤波/参考电路)与混合信号模块
  • 工业控制与仪器仪表中对低噪声电源的需求场合

四、布局与使用建议

  • 输入/输出去耦:为了确保稳压器稳定工作并获得最佳瞬态响应,建议在 VIN 端放置一个靠近器件引脚的 1 µF 到 10 µF 陶瓷电容(低 ESR、X7R/NP0 等),以及在输出端放置合适的陶瓷去耦电容,具体容值与稳态/瞬态要求相关。
  • 布局要点:将输入电容尽量靠近 VIN 引脚布置,GND 引脚应与 PCB 的地平面良好连接,走短而粗的电源回路以降低寄生阻抗。避免在输出与负载之间布置长、细线,减少压降与 EMI 敏感性。
  • 输出放电与使能:EN 引脚可用作上电/关断控制;器件在禁能态下会通过输出放电功能将 VOUT 拉低,这对系统上电序列管理非常有用。EN 的逻辑电平需在器件数据手册推荐电平范围内使用。
  • 电源热管理:SOT-23-5 封装的散热能力有限。在设计时须计算最坏情况下的功耗:Pd = (VIN - VOUT) × IOUT。例如当 VIN = 5.5V、VOUT = 1.8V、IOUT = 300mA 时,Pd ≈ 1.11W,此功率在 SOT-23-5 上会导致显著结温上升,可能触发热保护。建议在高 VIN 或高负载工作条件下采取降额、增加散热路径或选用更低输入电压的供电方案。

五、选型与注意事项

  • 确认输入电压余量:若系统常工作在接近最大输入 5.5V 且需要高负载电流,应评估器件的功耗与结温,必要时考虑外部散热或改用更大封装/更低压差器件。
  • 输出电容选择:为了稳态与瞬态性能,优先选择低 ESR、多层陶瓷电容;若使用大容量电解或钽电容,注意其 ESR 会影响稳定性与瞬态。
  • 检查 EN、电源序列及上电斜率对系统的影响:输出放电功能在系统重置时有帮助,但在某些需要缓慢上电的电路里需确认不会产生异常行为。
  • 在高精度模拟应用中,关注热漂与负载调节误差,必要时参考器件数据手册中的典型特性曲线进行仿真与验证。

MIC5504-1.8YM5-TR 在提供低噪声、高 PSRR 与低静态电流的同时,集成了实用的保护与控制功能,是对 1.8V 轨道有噪声与稳定性要求系统的合适选择。设计时请结合具体电压、负载与散热条件进行充分的热与稳定性评估。

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