WMSIC Electronic Components

SSM3J325F,LF SSM3J325F

ModelSSM3J325F,LF
PackageSOT-23
BrandTOSHIBA
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 26+

Available for RFQ

Technical data

Product details

20 specifications

Core information

Product name
TOSHIBA SSM3J325F, LF
Type
TOSHIBA
Unit
Electronic Component
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
TOSHIBA
Electronic Component
SSM3J325F,LF
Electronic Component
1
Package
SOT-23
Electronic Component
1 P
Type
P
Electronic Component
MOSFET
Electronic Component
0.034g
Electronic Component
1
Electronic Component
BM0265617697
Power Dissipation(Pd)
600mW
Electronic Component
Electronic Component
Electronic Component
3000
Voltage(Vdss)
20V

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

SSM3J325F,LF 产品概述

一、产品简介

SSM3J325F,LF 是东芝(TOSHIBA)推出的一款 P 沟道功率 MOSFET,采用 S-Mini(SOT-23)小封装,面向便携设备与低压高侧开关等应用场景。该器件的额定漏–源电压为 20V,标称连续漏极电流 2A(受限于封装散热),在低驱动电压下仍能实现良好的导通特性,是在空间受限、对静态损耗和开关性能有平衡要求设计中的优选元件。

二、主要参数与特性

  • 类型:P 沟道 MOSFET(高侧开关适用)
  • 最大漏源电压 Vdss:20 V
  • 最大连续漏极电流 Id:2 A(需注意封装散热限制)
  • 导通电阻 RDS(on):311 mΩ(在 |Vgs|=1.5 V、Id=0.2 A 条件下测得)
  • 阈值电压 Vgs(th):约 1.0 V(在 Id=1 mA 条件下)
  • 总栅极电荷 Qg:约 43 nC(在 Vgs=4.5 V 时)
  • 输入电容 Ciss:約 270 pF;输出电容 Coss:約 270 pF;反向传输电容 Crss:約 40 pF
  • 功耗 Pd:600 mW(SOT-23 封装,受环境温度与 PCB 散热影响)

这些参数表明器件在低电压驱动条件下即可导通,适合用作电池供电系统或 5V/3.3V 逻辑控制下的高侧开关。同时 Qg 与 Ciss 值提示开关驱动电流和开关损耗在快速切换场合需要注意。

三、典型应用

  • 电池供电设备的高侧负载开关(便携式设备、可穿戴、模块化电源)
  • 反向电流保护与电源切换(与控制逻辑配合实现自动切换)
  • 低功率 DC-DC 转换器中的同步开关(注意热设计)
  • 小功率电机驱动、指示灯、继电器驱动等开/关负载
  • 电源管理、软启动及短路保护电路

四、封装与热性能

SSM3J325F,LF 采用 S-Mini(等同 SOT-23)小封装,适合表面贴装,可节省 PCB 面积。但小封装带来较高的热阻率,器件的额定耗散功率 Pd(600 mW)在实际应用中受环境温度和 PCB 铜箔散热面积限制。需要注意:

  • 虽然 Id 标称为 2 A,但在无额外散热、常温下持续工作时受限于 Pd。若按 RDS(on)=0.311Ω 保守估算,在 Pd=0.6 W 条件下允许的连续电流约为 1.4 A(I = sqrt(Pd/R) ≈ 1.39 A);超过该值会导致结温上升并触发热失效。
  • 推荐通过增加铜箔面积、在器件下方布大面积散热层或并联器件来提高持续电流能力。

五、设计与选型建议

  • 驱动电压:由于阈值约为 1.0 V,且 RDS(on) 在 |Vgs|=1.5 V 条件下已给出,若系统允许更大的 |Vgs|(例如把栅拉至地),能进一步降低导通电阻。但仍需注意不要超过器件的最大 Vgs 规范(请参考原厂完整手册)。
  • 开关速度与损耗:Qg=43 nC、Ciss≈270 pF 表示栅极驱动需要一定电流,频繁快速切换会产生明显的驱动损耗。低功耗或低频切换场合更合适;若需高频切换,应评估驱动器能力并考虑降低 dv/dt 带来的电磁干扰。
  • 高侧应用:作为 P 沟道器件,适合直接用于高侧开关,控制方便(直接用微控制器将栅拉低开启)。但在高于逻辑电平的电源轨上使用时,应确保 Vgs 不超过允许值。
  • 测试与验证:在样机阶段应关注结温、导通压降及短路条件下的热稳定性,必要时在 PCB 设计中增加热过流保护或限流电阻。

六、实用提示与注意事项

  • 布局:尽量缩短漏、源、栅走线,增大漏极和源极的铜面积以改善散热;栅极串联阻值可减小振铃与 EMI。
  • 驱动:为减少切换损耗可使用适当的栅极电阻和平滑上升沿,避免因 Miller 电容(Crss)导致的栅电压回升。
  • 热保护:若应用可能出现持续大电流或短路,应采用软启动、限流或温度监测措施,防止因过热损坏器件。
  • 资料核验:本概述基于主要参数整理,详细极限值、温度特性及典型曲线请参阅东芝原厂数据手册以获得完整设计依据。

总结:SSM3J325F,LF 是一颗为低压高侧开关和便携电源管理优化的 P 沟道 MOSFET,在 SOT-23 小封装中提供较好的电性能与驱动兼容性。设计时应重点考虑封装散热限制、栅极驱动能量与开关损耗,通过合理的 PCB 热设计与驱动控制可在多种低功耗应用中获得稳定表现。

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