WMSIC Electronic Components

SGMICRO SGM4027-2.048XN3LG/TR SGM4027

ModelSGM4027-2.048XN3LG/TR
PackageSOT-23
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 SGM4027-2.048XN3LG / TR
Type
SGMICRO
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
SGMICRO
Electronic Component
SGM4027-2.048XN3LG/TR
Electronic Component
1
Package
SOT-23
Electronic Component
Voltage Reference IC
Electronic Component
±0.1%
Electronic Component
0.04g
Electronic Component
1
Features
Electronic Component
Electronic Component
BM0228061617
Operating Temperature
40℃~+125℃
Operating Voltage
3V~5.5V
Electronic Component
10ppm/℃
Output Voltage
2.048V
Output Current
10mA

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

SGM4027-2.048XN3LG/TR 产品概述

一、产品简介

SGM4027-2.048XN3LG/TR 是圣邦微(SGMICRO)推出的一款高精度、低噪声、固定输出电压参考源,采用小型 SOT-23 封装,适用于对体积、功耗和精度有较高要求的便携及工业类电子系统。该器件在 3.0V ~ 5.5V 的供电范围内可稳定提供 2.048V 的参考输出,具备温度补偿控制以确保在宽温区间内的电压稳定性。

二、关键参数概览

  • 输出类型:固定
  • 工作电压:3.0V ~ 5.5V
  • 输出电压:2.048V(标称)
  • 输出电流:最高 10 mA(驱动能力)
  • 初始精度:±0.1%(相当于约 ±2.048 mV)
  • 温度系数:10 ppm/℃(出色的温漂性能)
  • 静态电流(Iq):245 μA
  • 噪声(10 Hz–10 kHz):24.3 μV rms
  • 工作温度范围:-40℃ ~ +125℃
  • 功能特性:温度补偿控制
  • 封装:SOT-23
  • 品牌:SGMICRO(圣邦微)

三、性能解读与工程意义

  • 高精度(±0.1%):对需要高分辨率参考的模数转换器(ADC)、数模转换器(DAC)、精密测量电路等非常有利,能够显著降低系统误差来源。
  • 低温漂(10 ppm/℃):在大温度变化场景(例如 -40℃ 到 +125℃)下,理论上温漂贡献约为 165 × 10 ppm = 1650 ppm(约 0.165%),折合电压约 3.38 mV,可为精密系统提供长期稳定基准。
  • 低噪声(24.3 μV rms):在 10 Hz–10 kHz 带宽内的低噪声特性,有利于提高 ADC 动态范围和重复性,特别是在高分辨率测量中显著降低噪声底。
  • 低静态电流(245 μA):适合电池供电或低功耗系统。以 3.0V 供电为例,待机功耗约 0.735 mW;以 5 V 供电则约 1.225 mW。
  • 输出驱动(10 mA):可直接驱动小负载或后级采样电容。若系统需更大驱动能力,建议使用缓冲放大器以避免对参考精度产生影响。

四、典型应用场景

  • 高分辨率 ADC 和精密数据采集系统(数据采集卡、便携仪表)
  • 精密 DAC 基准源
  • 传感器前端与测量放大器(电压、电流、温度传感)
  • 工业过程控制与计量设备
  • 电池供电的便携式医疗与测试设备

五、设计与布局建议

  • 去耦与滤波:为获得最佳噪声与瞬态性能,建议在输出端近距离并联小型低 ESR 电容(典型值范围 0.01 μF–1 μF,视应用而定),并结合系列电阻与 RC 滤波以抑制高频干扰。选择电容时注意其温度系数与漏电流对参考的影响。
  • 负载影响:在接近 10 mA 的负载下,可能出现轻微的输出偏移或压降;对高精度系统,尽量减小直接负载,采用运放缓冲驱动后级负载。
  • PCB 布局:将参考芯片的信号引脚与敏感模拟走线分开,地线采用单点或星形回流,避免数字地、开关电源噪声耦合进参考。尽量缩短参考输出到 ADC 参考输入的走线。
  • 热源隔离:参考电压受温度影响较大时,避免将发热器件(如功率晶体、调压器)靠近参考芯片,保证温度补偿特性在稳定的局部热环境中工作。
  • 启动与恢复:某些应用场合需考虑参考上电时间与稳定时间(settling time),为保证测量准确性,上电后给足够的稳定时间再进行关键采样。

六、封装与采购信息

  • 封装形式:SOT-23,适合表面贴装工艺,节省 PCB 面积,便于批量自动贴装。
  • 常见订购形式通常以带卷盘(TR)方式交付,便于 SMT 生产线直接投料。

七、总结

SGM4027-2.048XN3LG/TR 是一款面向高精度、低噪声、小体积应用的固定输出电压参考器件。其 ±0.1% 的初始精度、10 ppm/℃ 的低温漂与 24.3 μV rms 的低噪声,使其非常适合精密测量、数据采集和传感器前端等场合;同时 245 μA 的低静态电流和 SOT-23 小封装也适合便携式、低功耗设计。合理的 PCB 布局和去耦设计能进一步释放其性能,为系统提供稳定可靠的基准电压。若需在更大负载或更低噪声极限下使用,建议结合缓冲器或滤波网络进行优化。

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