WMSIC Electronic Components

SGMICRO SGM8240-1AXN5G/TR SGM8240

ModelSGM8240-1AXN5G/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 Date code within 2 years

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
SGMICRO SGM8240-1AXN5G / TR
Type
SGMICRO
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
SGMICRO
Electronic Component
SGM8240-1AXN5G/TR
Electronic Component
1
Package
SOT-23-5
Electronic Component
Operational Amplifier
Electronic Component
0.046g
Electronic Component
1
Electronic Component
Output
Electronic Component
BM0233299449
Operating Temperature
40℃~+125℃
Amplifier
1
Output Current
20mA
(SR)
50V/ms
Static Current(Iq)
2.8uA
Electronic Component
Electronic Component

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

SGM8240-1AXN5G/TR 产品概述

SGM8240-1AXN5G/TR 是圣邦微(SGMICRO)推出的一款单通道低功耗轨到轨输入/输出运算放大器,封装为 SOT-23-5。凭借超低静态电流、极低输入失调与漂移、极低偏置电流以及良好的共模抑制,该器件在便携式与电池供电系统、传感器接口与精密信号调理等场合具有显著优势。

一、主要特点与参数一览

  • 放大器数:1(单通道)
  • 轨到轨:轨到轨输入、轨到轨输出(可在接近供电轨的电压下正常工作)
  • 输入失调电压 (Vos):400 μV
  • 输入失调电压温漂 (Vos TC):3 μV/℃
  • 压摆率 (SR):50 V/ms
  • 输入偏置电流 (Ib):5 pA
  • 输入失调电流 (Ios):5 pA
  • 共模抑制比 (CMRR):110 dB
  • 静态电流 (Iq):2.8 μA(典型,单通道)
  • 输出电流:20 mA
  • 工作温度范围:-40 ℃ ~ +125 ℃
  • 封装:SOT-23-5
  • 品牌:SGMICRO(圣邦微)

二、性能亮点与优势

  • 极低功耗:典型静态电流仅 2.8 μA,使该器件非常适合对能耗敏感的电池供电与便携式应用,延长系统待机与运行时间。
  • 高精度输入特性:输入失调电压仅 400 μV,配合 3 μV/℃ 的温漂,有利于提高直流测量与缓冲电路的长期精度。
  • 超低输入偏置电流:5 pA 的偏置电流表明输入级采用 CMOS 工艺或极低漏电结构,适合高阻抗传感器(如电化学、电容或高阻抗放大器)直接接口。
  • 轨到轨输入/输出:能够在接近电源轨电压下处理信号,简化单电源系统设计,减少对偏置级或负电源的需求。
  • 较好带宽/瞬态响应:50 V/ms 压摆率适用于中等带宽的信号链,能满足多种滤波、放大与缓冲场景的瞬态要求。
  • 宽温度范围:-40 ℃ 至 +125 ℃ 的工业级温度范围,适用于工业控制、汽车电子与严苛环境。

三、典型应用场景

  • 传感器前端:温度、压力、流量、光电等高阻抗传感器的缓冲与精密测量。
  • 电池与电源监控:因低功耗与轨到轨特性,适合电池电压检测与功率管理前端放大。
  • 仪表与数据采集:要求低失调、低漂移的差分/单端放大与滤波应用。
  • 便携式医疗与便携式测试设备:在能源严格受限的系统中提供精确信号调理。
  • 主动滤波器与电压跟随器:用于精密低频信号处理与稳定驱动 ADC 的输入。

四、设计与使用建议

  • 电源旁路:为保证稳定与低噪声性能,建议在电源引脚附近放置合适的去耦电容(例如 0.1 μF 与 1 μF 并联),并尽量靠近器件引脚布局。
  • 输入保护:尽管器件为轨到轨输入,仍建议在可能出现高压或静电冲击的输入路径加入限流或钳位措施(如小信号二极管或限流电阻),以保护输入级。
  • 负载与稳定性:输出可提供最高约 20 mA 的驱动能力,但对于大的容性负载(如长线或大容性采样电容)可能影响稳定性。必要时在输出串联小阻(10 Ω~100 Ω)以提高稳定性。
  • 布局考虑:为利用低偏置电流特性,注意避免输入长行走路径与高泄漏表面污染。采用良好的地平面与短回路路径以降低干扰与噪声。
  • 温度漂移管理:在高精度直流测量场合,考虑器件的 3 μV/℃ 漂移对系统误差的影响,可通过校准或差分测量消减温漂效应。

五、封装与系统集成

SOT-23-5 小巧封装适合空间受限的 PCB 设计。封装体积小但需要注意热管理与焊盘设计以保证可靠性。在多通道、高密度系统中,SOT-23-5 可与其他被动器件紧凑布置,降低 BOM 与整体尺寸。

总结:SGM8240-1AXN5G/TR 提供了低功耗、高精度与轨到轨输入输出的平衡组合,适合要求低能耗与高输入阻抗的精密信号调理场合。合理的电源与输入保护设计、注意负载驱动能力与 PCB 布局,可最大化其在传感器前端、便携式设备与仪表中的性能表现。

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