WMSIC Electronic Components

SGMICRO SGM8049-1XN5G/TR SGM8049

ModelSGM8049-1XN5G/TR
PackageSOT-23-5
BrandSGMICRO
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 Electronic Component

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
SGMICRO SGM8049-1XN5G / TR
Type
SGMICRO
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
SGMICRO
Electronic Component
SGM8049-1XN5G/TR
Electronic Component
1
Package
SOT-23-5
Electronic Component
Operational Amplifier
Electronic Component
0.068g
Electronic Component
1
Electronic Component
Electronic Component
Electronic Component
BM0265750668
Operating Temperature
40℃~+125℃
Amplifier
1
Output Current
20mA
(SR)
80V/ms
Power Supply Voltage
1.8V~5.5V
Static Current(Iq)
2.5uA

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

SGM8049-1XN5G/TR 产品概述

一 概要介绍

SGM8049-1XN5G/TR 是 SGMICRO(圣邦微)推出的一款超低功耗、轨到轨输入的单通道运算放大器,封装为 SOT-23-5。器件专为电池供电和低功耗便携设备设计,兼顾高精度与极低静态电流,适合传感器前端、高阻抗缓冲和低频信号处理场景。

核心参数一览:

  • 放大器数:1
  • 轨到轨输入(Rail-to-Rail Input)
  • 增益带宽积(GBW):120 kHz
  • 输入失调电压(Vos):850 µV
  • Vos 温漂:500 nV/℃
  • 压摆率(SR):80 V/ms
  • 输入偏置电流(Ib):1 pA
  • 输入失调电流(Ios):1 pA
  • 输入电压噪声密度(eN):75 nV/√Hz @ 1 kHz
  • 共模抑制比(CMRR):100 dB
  • 静态电流(Iq):2.5 µA
  • 输出电流:20 mA
  • 工作温度范围:-40 ℃ ~ +125 ℃
  • 单电源电压范围:1.8 V ~ 5.5 V
  • 支持双电源工作(最大±2.75 V),具体输入/输出在接近地的性能请参考完整资料
  • 封装:SOT-23-5

二 主要特性与优势

  • 极低功耗:典型静态电流仅 2.5 µA,适合长续航电池和物联网终端。
  • 高精度:850 µV 的输入失调和 500 nV/℃ 的温漂保证了长期稳定性,配合 100 dB 的 CMRR 适合精密差分信号测量。
  • 极低输入偏置电流(1 pA):非常适合高阻抗传感器接口(电化学、pH、电容传感器等)。
  • 轨到轨输入:能够处理接近电源轨的信号,便于低电压单电源系统设计。
  • 合理的噪声与带宽:1 kHz 时 75 nV/√Hz、GBW 120 kHz,适用于低频到中低频精密放大及滤波应用。
  • 良好输出驱动能力:最高 20 mA 输出电流,能够驱动常见模拟负载与后级电路。

三 典型应用场景

  • 低功耗传感器前端:温度、湿度、压力、气体与电化学传感器的高阻抗信号采集与初级放大。
  • 便携式医疗与可穿戴设备:对功耗敏感且需要高精度的模拟前端电路。
  • 电池管理与监测:电压检测、差分测量、低功耗电压跟随器。
  • 低频主动滤波与缓冲:低通/带通滤波器、缓冲放大器、ADC 驱动(低采样率场合)。
  • 仪表放大:要求低偏流、低失调漂移的测量放大场合。

四 设计与使用建议

  • 电源与旁路:尽量在 Vcc 和 GND 之间靠近封装放置 0.1 µF(和必要时的 1 µF)旁路电容,以降低电源噪声对静态电流和输入失调的影响。
  • 高阻抗输入处理:当处理 pA 级输入偏置电流时,PCB 材料与走线漏电可能影响精度。建议使用保护涂层/绝缘处理、最短输入走线,并在敏感输入使用护环(guard ring)技术。
  • 带宽限制与稳定性:GBW 为 120 kHz,闭环增益和所选电容负载会影响稳定性与相位裕度。对于高增益或需要驱动容性负载的场合,需按数据表建议进行频率补偿或串联小阻抗。
  • 输出与驱动:尽管最大输出电流达 20 mA,但长时间驱动近最大电流会增加功耗与发热。对负载敏感的场合应适当限制输出负载。
  • 共模与双供电注意事项:器件支持单电源 1.8–5.5 V 以及双电源工作(最大对称 ±2.75 V)。若系统需要在地电位附近处理信号,建议核对器件在接近地轨时的输入共模范围与输出摆幅能力,确保满足设计要求。

五 封装与可获性

SGM8049-1XN5G/TR 提供 SOT-23-5 小封装,适合空间受限的 PCB 设计与自动化贴片生产。作为 SGMICRO 的产品,适合量产采购,具体封装、管脚与样片获取请联系供应商或参考原厂资料。

六 小结

SGM8049-1XN5G/TR 是一款针对低功耗、高精度和高输入阻抗场合优化的运算放大器,适合便携式传感器前端与低频精密放大应用。设计时需关注其带宽与输出驱动能力,并在 PCB 布局上采取防漏电与旁路措施,以发挥其低失调、低偏流与低噪声的优势。如需在特殊工况(例如高频、大电流或极端共模范围)下使用,建议结合完整数据手册进行仿真与验证。

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