WMSIC Electronic Components

ST LF351DT

ModelLF351DT
PackageSO-8
BrandST
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
ST(STMicroelectronics) LF351DT
Type
ST
Unit
Electronic Component
Minimum package
2500 编带

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
ST(STMicroelectronics)
Electronic Component
LF351DT
Electronic Component
1
Package
SO-8
Electronic Component
FET-Input Op Amp
Electronic Component
0.235g
Electronic Component
1
Features
Built-in
Electronic Component
BM0228535362
Operating Temperature
0℃~+70℃
Amplifier
Electronic Component
Output Current
40mA
(SR)
16V/us
Power Supply Voltage
6V~32V

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

LF351DT 产品概述

一、主要特点

LF351DT 是一款 FET 输入的单路运算放大器,由 ST(意法半导体)提供,封装为 SO-8,适合通用模拟放大电路与精密信号链的前端缓冲。其核心性能包括高输入阻抗、较低的输入偏置电流和较快的压摆率,适用于需要低失真、快速响应的场合。

主要指标一览:

  • 放大器数:单路
  • 增益带宽积(GBP):4 MHz
  • 压摆率(SR):16 V/µs
  • 输入偏置电流(Ib):20 pA(典型)
  • 输入失调电流(Ios):5 pA
  • 输入失调电压(Vos):3 mV
  • 输入失调电压温漂(Vos TC):10 μV/°C
  • 共模抑制比(CMRR):70 dB
  • 静态电流(Iq):3.4 mA
  • 输出电流:40 mA
  • 单电源工作电压:6 V ~ 32 V(最大电源宽度 32 V)
  • 工作温度:0 °C ~ +70 °C
  • 噪声密度(eN):15 nV/√Hz @ 1 kHz

二、电气性能与优势

LF351DT 采用 JFET 输入结构,从而实现极低的输入偏置电流(pA 量级),这对高阻抗传感器、电容式探头或电流源测量极为重要。16 V/µs 的压摆率能够保证在中等带宽下保持较低的失真和良好的瞬态响应。4 MHz 的增益带宽积适合多数音频及低频精密放大器应用。输出驱动能力可达 40 mA,能驱动较低阻抗的负载或后级缓冲器。

三、典型应用场景

  • 高阻抗传感器前端放大(热电偶、压电传感器、光电探测器等)
  • 仪表放大器与差分信号缓冲
  • 主动滤波器、信号整形与音频前级放大
  • 精密采样保持、比较器缓冲(非高速)
  • 需要低输入漂移和低噪声的通用放大电路

四、设计与布局建议

  • 电源去耦:在 V+ 和 V–(或地)附近各并联 0.1 μF 陶瓷电容与 10 μF 以上的电解电容,以抑制电源噪声和瞬态。
  • 输入保护:JFET 输入对静电较敏感,布局时应缩短输入回路、使用输入保护电阻或 TVS 器件保护敏感输入。
  • 走线与接地:将敏感模拟地与数字地分离并在单点汇流,避免地回流影响低电平信号。输入信号走线应尽量短且远离高频噪声源。
  • 温漂补偿:若需更高精度,考虑在系统级实施失调和漂移校准,或选择外部补偿网络降低 Vos 引入的误差。
  • 热管理:静态电流 3.4 mA,工作温度 0~70 °C,确保器件散热良好,避免长期工作在极限温度导致性能退化。

五、选型与注意事项

  • 工作电压范围宽(6 V 至 32 V),适合单电源与双电源设计;但应避免超过最大电源差值 32 V。
  • 噪声密度约 15 nV/√Hz(1 kHz),对超低噪声场合仍需评估是否满足要求。
  • 输入失调电压 3 mV 为典型值,若需更低 Vos,可考虑带有内置校正或更高精度型号。
  • 工作温度限制在商业级(0–70 °C),应用于工业或高温环境需选用扩展温度版本或做额外的环境控制。
  • 替代选择:若需更高带宽或更低失调/噪声,可在 ST 或其他厂商产品线中对比更高性能的 JFET/CMOS 输入运放。

总结:LF351DT 在通用精密放大和高阻抗源缓冲场合提供了较好的平衡性能:低输入偏置电流、适中的噪声和较快的压摆率,使其成为许多模拟前端设计中的可靠选择。设计时注意电源去耦、输入保护与温漂管理,可充分发挥其性能。

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