WMSIC Electronic Components

MSKSEMI MMDT5401

ModelMMDT5401
PackageSOT-23
BrandMSKSEMI
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 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
MSKSEMI MMDT5401
Type
MSKSEMI
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
MSKSEMI
Electronic Component
MMDT5401
Electronic Component
1
Package
SOT-23
Electronic Component
2 PNP
Electronic Component
Transistor(BJT)
Electronic Component
0.032g
Electronic Component
1
Electronic Component
BM0230826863
Operating Temperature
55℃~+150℃
Transistor Type
PNP
Frequency(f T)
100MHz
Power Dissipation(Pd)
200mW
Electronic Component
Electronic Component
Electronic Component
3000

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

MMDT5401 产品概述

一、产品简介

MMDT5401 是由 MSKSEMI(美森科)提供的一款高压小信号 PNP 晶体管,采用标准 SOT-23 表面封装,专为空间受限的电子产品设计。器件兼顾高压耐受性与较高直流增益,适合在中低功耗、高压场合中作为开关或放大元件使用。其主要面向便携设备、信号调理、电源管理和高电压偏置电路等应用场景。

二、主要电气参数

  • 晶体管类型:PNP
  • 最大集电极电流 (Ic):200 mA
  • 集-射极击穿电压 (Vceo):150 V
  • 耗散功率 (Pd):200 mW(SOT-23 封装限值)
  • 直流电流增益 (hFE):300(典型,测试条件:Ic=10 mA、Vce=5 V)
  • 特征频率 (fT):100 MHz
  • 集电极截止电流 (Icbo):50 nA(室温典型)
  • 集-射极饱和电压 (VCE(sat)):典型 500 mV(测试条件列示:50 mA 与 5 mA)
  • 工作温度范围:-55 ℃ ~ +150 ℃
  • 射-基极击穿电压 (Vebo):5 V
  • 封装:SOT-23

以上参数表明 MMDT5401 在保持较低泄漏的同时,能承受较高 Vce 电压,并在小信号范围内提供较高增益。

三、性能特点与优势

  • 高压能力强:Vceo 达 150 V,适合高压偏置或信号隔离场合,能替代部分低压器件用于更严苛的电压环境。
  • 高增益:hFE≈300 在 10 mA 条件下表现良好,对于小信号放大和电流镜等应用能够减小基极驱动电流,提高电路效率。
  • 频率响应适中:fT=100 MHz,使其可用于音频、低速射频或脉冲电路的放大与开关。
  • 低漏电流:Icbo≈50 nA,有利于高阻输入、待机功耗和温度敏感电路的稳定性。
  • 小型封装:SOT-23 适合表贴生产,节省空间,便于自动贴装与回流焊。

四、封装与热管理

SOT-23 封装下的 Pd 为 200 mW,意味着器件在工作时对功率耗散非常敏感。系统设计时需注意:

  • 在高 Vce 或高 Ic 条件下计算耗散:Pd = Vce × Ic,应确保在预计工况及最高环境温度下不超过器件额定耗散,并预留热余量。
  • 若工作点靠近 Pd 限制,建议降低占空比、增加散热空间或选择更大功率器件。
  • PCB 布局方面尽量保持集电极与散热铜箔良好连接,缩短走线并避免热阻集中。

五、典型应用

  • 高压偏置电路与电平移位:利用其高 Vceo 在有高电位存在的电路中做开关或偏置元件。
  • 小信号放大器:音频放大、前置放大或传感器信号调理,利用高 hFE 降低基极驱动需求。
  • 开关与驱动:在需要中等电流(几十 mA)且对饱和压容忍度较高的高侧开关场合适用。
  • 模拟电路:电流镜、恒流源和参考电路等需要高增益与低漏电流的模块。
  • 低功耗待机电路:低 Icbo 有助于降低静态泄漏功耗。

六、使用建议与注意事项

  • 极性与偏置:作为 PNP 器件,发射极需比基极与集电极电位更正(更高电位)以导通,设计高侧开关或正电位偏置时要特别注意基极驱动电平。
  • 防止基—射击穿:Vebo 仅 5 V,避免在基—射间施加反向电压超过该值。设计驱动或浪涌场合可并联限压或钳位元件。
  • 饱和压与功耗:VCE(sat) 约 0.5 V 在 50 mA 时可能导致一定功耗,开关应用需评估该压降对系统功耗与热影响。
  • 温度影响:漏电流随温度上升而增加,若在高温工作环境应评估 Icbo 对基偏置和待机电流的影响。
  • PCB 布局:基极和发射极走线尽量短且旁路,抑制寄生电感与提高开关速度。必要时在基极并联小电阻以稳定开关行为并限制峰值电流。

七、典型电路参考(概述)

  • 高侧开关:发射极连电源正,集电极到负载,基极通过限流电阻由合适的驱动电平拉低以导通。基极需在不导通时通过上拉保持与发射极接近电位以防误导通。
  • 共射放大:用于小信号放大时,建议合理偏置基极电流并使用旁路电容以提高交流增益,同时注意 Vce 与功耗限制。

总结:MMDT5401 是一款兼顾高压承受能力与高 hFE 的小型 PNP 晶体管,适合用于高压偏置、小信号放大及中等电流开关场合。设计中应重点关注功耗与基—射击穿限制,合理布线与热设计可发挥其最佳性能。若需进一步的引脚排列或详细绝对最大额定值表,请参考 MSKSEMI 官方完整数据手册。

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