WMSIC Electronic Components

VBsemi AO7801-VB AO7801

ModelAO7801-VB
PackageSC-70-6
BrandVBSEMI
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

19 specifications

Core information

Product name
VBsemi AO7801-VB
Type
VBSEMI
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
VBSEMI
Electronic Component
AO7801-VB
Electronic Component
1
Package
SC-70-6
Electronic Component
2 P
Type
P
Electronic Component
MOSFET
Electronic Component
0.043g
Electronic Component
1
Electronic Component
BM0264573276
Operating Temperature
55℃~+150℃
Power Dissipation(Pd)
1.4W
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.

AO7801-VB 产品概述

一、概述与定位

AO7801-VB 是 VBsemi(微碧半导体)推出的一款双路 P 沟道 MOSFET,采用紧凑的 SC-70-6 封装,面向便携设备与低功耗系统中的高侧开关、负载切换和电源管理应用。该器件在低电压驱动下具有较低的导通电阻和较小的栅极电荷,适合对体积和开关损耗有严格要求的场景。

主要参数(要点)

  • 通道数:2 个 P 沟道
  • 漏源耐压 Vdss:20 V
  • 连续漏极电流 Id:1.8 A(封装散热受限,参考热设计)
  • 导通电阻 RDS(on):155 mΩ @ Vgs = 4.5 V;235 mΩ @ Vgs = 2.5 V
  • 总耗散功率 Pd:1.4 W
  • 阈值电压 Vgs(th):1.5 V
  • 总栅极电荷 Qg:2.7 nC @ 4.5 V
  • 输入电容 Ciss:210 pF;反向传输电容 Crss:33 pF;输出电容 Coss:45 pF
  • 工作温度范围:-55 ℃ ~ +150 ℃
  • 封装:SC-70-6(超小型表面贴装)

二、核心特性与优势

  • 双通道集成:在一枚 SC-70-6 封装内集成两路 P 沟道 MOSFET,有利于节省 PCB 面积并方便实现双路开关或并联以降低导通电阻(并联时需注意电流均衡)。
  • 低 RDS(on):在 4.5 V 驱动时 155 mΩ 的 RDS(on) 对于便携式 3~12 V 的电源路径切换是高效的;在 2.5 V 驱动下仍能保持 235 mΩ,适配 3.3 V 逻辑电平(但效率略低)。
  • 低栅电荷与小电容:Qg = 2.7 nC、Ciss = 210 pF,使得开关转换时所需驱动能量低、开关损耗可控,有利于 MCU 直接驱动或通过小型驱动器快速切换。
  • 宽温度范围与良好可靠性:-55 ℃ 到 +150 ℃ 的工作范围满足工业级与消费类大部分环境要求。

三、典型应用场景

  • 移动电源与便携设备的电源路径或负载开关(高侧开关)
  • 电池管理与电源选择电路(如电池与外部电源自动切换)
  • USB/摄像头/传感器等外设的电源控制
  • 反向电流阻断与简易保护电路
  • 需要小体积、双通道开关的低功耗系统

四、驱动与电路注意事项

  • P 沟道器件为高侧开关常用类型:源端接正电源(如电池正),漏端接负载。对于完全导通,需要 Vgs 为负方向(Vg 低于 Vs);例如若源为 5 V,需将栅拉到接近 0 V 才能充分导通。
  • 驱动电平:器件在 4.5 V 驱动下的 RDS(on) 最佳,2.5–3.3 V 逻辑驱动时仍可工作但导通电阻上升。若高侧电源电压高于控制器电压(如 12 V 电源与 3.3 V MCU),需加入电平位移或专用驱动电路以确保 Vgs 在允许范围内。
  • 栅极保护:建议在栅极串入小阻(10–100 Ω)以抑制振铃并限制瞬态电流;同时通过上拉电阻(如 100 kΩ)将栅极在无驱动时拉到源电位以保证关断。必要时在栅源之间并联限压器或 TVS 防止过压。
  • 开关速率与 EMI:器件 Qg 与 Ciss 较小,开关较快,需注意 PCB 布线、布局上的寄生电感以及可能的 EMI,必要时增加缓冲或 RC/RC+电感滤波抑制尖峰。
  • 并联与热均衡:若要降低等效 RDS(on),可以并联两路,但需设计良好的 PCB 热路径与对称走线以保证电流均衡。

五、热管理与可靠性建议

  • 封装 SC-70-6 热阻较大,额定 Pd = 1.4 W 在典型 PCB 上会受限于铜箔面积与温升。实际允许的连续电流在较高环境温度下会被热降额,建议在 1 A 量级下评估散热裕量并通过加大铜箔面积或热焊盘改善散热。
  • 在高温、高功率或持续大电流场合,宜采用更大封装或增加散热措施,避免长期运行在 Pd 限值附近。

六、封装与订购信息

  • 型号:AO7801-VB
  • 品牌:VBsemi(微碧半导体)
  • 封装:SC-70-6(超小型 6 引脚)
  • 推荐在选型时参考完整版数据手册以获取详细的最大额定值、引脚定义和典型特性曲线。

总结:AO7801-VB 是一款面向空间受限、对开关损耗和栅极驱动要求较高的双路 P 沟道 MOSFET,适用于便携设备与电源管理场景。关注驱动电平、热设计和 PCB 布局可以充分发挥其低 Qg、低 Ciss 和较优 RDS(on) 的优势。若需更高电流或更低阻抗,应考虑并联或选用更大封装的器件,并查阅厂方完整资料进行最终验证。

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