WMSIC Electronic Components

Jingdao Microelectronics MMBT5551

ModelMMBT5551
PackageSOT-23
BrandElectronic
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
Electronic MMBT5551
Type
Jingdao Microelectronics
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic
Electronic Component
MMBT5551
Electronic Component
1
Package
SOT-23
Electronic Component
1 NPN
Electronic Component
Transistor(BJT)
Electronic Component
0.012g
Electronic Component
1
Electronic Component
BM0229356798
Operating Temperature
55℃~+150℃
Transistor Type
NPN
Frequency(f T)
300MHz
Power Dissipation(Pd)
300mW
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.

MMBT5551 产品概述

MMBT5551 是晶导微电子推出的一款高压小信号 NPN 晶体管,采用 SOT-23 小型封装,适合在空间受限且需承受较高集电极-发射极电压的电路中使用。器件以其高击穿电压、较高的频率特性和良好的直流增益,广泛应用于高压开关、信号放大及电平转换等场合。

一、主要特性

  • 晶体管类型:NPN(双极型晶体管,BJT)
  • 最大集电极电流 Ic:600 mA(短时或脉冲条件下)
  • 集电极-发射极击穿电压 Vceo:160 V,高电压耐受能力强
  • 耗散功率 Pd:300 mW(SOT-23 封装,环境温度及散热条件影响器件允许功耗)
  • 直流电流增益 hFE:典型 80(测试条件:Ic = 1 mA, VCE = 5 V)
  • 特征频率 fT:约 300 MHz,适合高速信号放大
  • 集电极截止电流 Icbo:典型 50 nA(低漏电流)
  • 集电极饱和电压 VCE(sat):约 200 mV(测试条件示例:Ic = 50 mA, Ib = 5 mA)
  • 射极-基极击穿电压 Vebo:6 V(注意不要反向偏置过高)
  • 工作温度范围:-55℃ 至 +150℃
  • 封装形式:SOT-23,便于表面贴装和自动化生产

二、典型电气参数说明

  • 高 VCEo(160 V)使得 MMBT5551 在需要耐受较高电压的开关或级联电路中表现出色,如开关电源初级侧、继电器驱动或高压传感接口。
  • Pd 为 300 mW,意味着在 SOT-23 封装下连续大电流运行会受限于结温和环境散热能力,需设计上注意功耗分担或采用较低占空比工作方式。
  • hFE 在低电流条件下保持较好增益(80@1 mA),便于在小信号放大级中获得稳定增益;fT 达 300 MHz,支持高频小信号放大或缓冲应用。
  • 低漏电(Icbo = 50 nA)有利于高阻抗节点的稳定性和低功耗待机电路。

三、典型应用场景

  • 高压小信号放大:用于需要处理高压信号但电流不大的放大器或前置缓冲器。
  • 开关电路与驱动:适用于中小电流、高压开关,如高压继电器驱动、步进电机驱动信号级、以及某些消费类电源开关场景(注意功耗限制)。
  • 电平位移与电平转换:在不同电压域之间做电平拉动或位移,利用其高击穿电压保证安全裕量。
  • 高频小信号处理:利用 300 MHz 的特征频率,适合高频缓冲、射频前端低功耗部分或高速数字接口的电平放大(需注意阻抗匹配)。
  • 通用小信号开关与限流:在信号隔离、检测或保护电路中作为通用开关或限流元件。

四、封装与引脚注意

  • 封装:SOT-23,适用于表面贴装工艺(SMT),占板面积小,便于自动化生产。
  • 引脚:SOT-23 为三引脚结构(基极 B、集电极 C、发射极 E)。不同厂家的封装引脚顺序可能有所差异,建议在设计时参考晶导微电子的器件封装图与管脚定义,确保布板与焊接正确。

五、使用建议与注意事项

  • 功耗管理:由于 Pd 仅 300 mW,若长期工作在大电流或高 VCE 条件下,需要通过降低工作电流、使用脉冲工作模式或改善 PCB 散热(铜箔面积、散热垫)来控制结温。
  • 饱和驱动:若作为开关使用,应保证基极驱动足够(例如在 Ic = 50 mA 时,基极电流可按 1:10 的比例估算,即 Ib ≈ 5 mA),以降低 VCE(sat) 并保证开关效率。
  • 极限电压与反向偏置:避免对基极-射极施加大于 Vebo(6 V)的反向电压,以防基极-射极击穿损坏器件;集电极-基极也应避免超过其最大反向电压规格。
  • 静电与浪涌保护:在高压应用中,注意防范浪涌和静电,必要时添加 TVS 或限流元件提高系统可靠性。
  • 校验引脚和封装:在替换或设计时务必核对供应商 Datasheet,确认引脚排列和热性能参数,避免接错引脚或超额工作。

六、小结

MMBT5551 是一款兼具高压耐受与高速特性的 SOT-23 NPN 小信号晶体管,适用于需要耐高压且空间受限的电子设计。凭借 160 V 的 Vceo、300 MHz 的 fT 以及较低的饱和电压,它在高压开关、信号放大与电平转换等方面具有良好适配性。但同时需注意封装功耗限制与正确的基极驱动策略,从而在实际电路中取得稳定可靠的性能表现。

如需具体封装图、引脚序列和详细热阻/绝对最大额定值,请参考晶导微电子提供的原厂 Datasheet。

Request for quote

Send RFQ

Use the form for single models, category sourcing, and multi-line BOM requirements.

Send your target model and quantity.

Product sourcing intelligence

Model, package, availability, and BOM fit reviewed before quotation.

WMSIC turns product data, package visuals, BOM context, and sourcing signals into practical RFQ notes for buyers.

Electronic component model and package intelligence review on an ESD-safe inspection bench

Model & package intelligence

Model text, package form, tray or reel details, and visual evidence are reviewed together before RFQ feedback.

BOM matching and alternative component comparison workstation with protected IC samples

BOM matching & alternatives

BOM lines are compared by package, parameters, quantity, and workable alternatives for cleaner sourcing decisions.

Electronic component sourcing availability dashboard with ESD-protected samples

Sourcing availability signal

Stock routes, quotation confidence, lead-time notes, and shipment feasibility are checked before sales follow-up.

Buyer sourcing scenarios

Examples of how common component sourcing requests are organized.

Typical RFQ scenarios based on the WMSIC form fields, catalog data, manual review steps, and shipment preparation workflow.

The buyer shares the full part number, package requirement, quantity, destination, and available product photos so the quotation can record the exact version under review.

Package confirmation Typical RFQ workflow

A multi-line BOM is organized into direct sourcing lines, lines that need package clarification, and lines where alternative-part review is permitted.

Mixed BOM triage Typical RFQ workflow

The original manufacturer part number, datasheet revision, application, critical limits, and acceptable changes are collected before possible candidates are discussed.

Obsolete-part review Typical RFQ workflow

Sample quantity, minimum packing, package format, target date, and courier destination are kept together in one RFQ conversation.

Small-batch request Typical RFQ workflow

Package photos, model markings, board context, and the quantity needed for repair help focus the sourcing review on the relevant version.

Repair batch evidence Typical RFQ workflow

When a suffix or package note is incomplete, the response records the open difference and requests buyer confirmation before procurement proceeds.

Model suffix clarification Typical RFQ workflow

Packing format, carton notes, invoice details, courier option, destination, and tracking handoff are coordinated around the confirmed order.

Export handoff Typical RFQ workflow

The request connects the previously used model, current demand, package evidence, target timing, and replenishment sourcing route.

Replenishment inquiry Typical RFQ workflow

Related products

Packaged components ready for RFQ.