WMSIC Electronic Components

Slkor SMF05CT

ModelSMF05CT
PackageSOT-363
BrandSLKOR
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
Slkor SMF05CT
Type
SLKOR
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
SLKOR
Electronic Component
SMF05CT
Electronic Component
1
Package
SOT-363
Type
TVS
Electronic Component
ESD and Surge Protection (TVS / ESD)
Electronic Component
0.032g
Electronic Component
1
Cj- Capacitor
60pF
Electronic Component
BM0230872012
Operating Temperature
55℃~+150℃
Voltage
12V
Electronic Component
IEC 61000-4-4;IEC 61000-4-2
Current(Ir)
5uA
Voltage(VBR)
6V

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

SMF05CT(SOT-363)产品概述

一、产品简介

SMF05CT 是 Slkor(萨科微)推出的一款面向低电压数字与接口线路的瞬态电压抑制(TVS)二极管,封装为 SOT-363,专为静电放电(ESD)和浪涌(EFT/Surge)保护而设计。该器件对 5V 等级电路具有快速响应能力,可在瞬态冲击发生时将过电压钳位在安全范围内,保护后端敏感元器件不受损害。

主要静电/浪涌防护指标:

  • 反向工作电压 Vrwm:5V(适配 5V/3.3V 系统保护方案)
  • 击穿电压 Vbr:6V(标称)
  • 钳位电压:12V(峰值钳位,8/20µs 波形下)
  • 峰值脉冲电流 Ipp:9A(8/20µs 波形)
  • 峰值脉冲功率 Ppp:100W(8/20µs 波形)
  • 反向漏电流 Ir:5µA(常温)
  • 结电容 Cj:60pF(典型)
  • 工作温度范围:-55℃ ~ +150℃
  • 符合 IEC 61000-4-2(ESD)与 IEC 61000-4-4(EFT)防护要求

二、主要特性与优势

  • 针对 5V 系统优化:Vrwm=5V 使其适合一般 MCU、逻辑电路、USB、串口等 5V 或下等级接口的保护。
  • 高能量吸收能力:Ppp=100W、Ipp=9A(8/20µs)可承受较强的脉冲冲击,保护能力可靠。
  • 低漏电流:Ir=5µA 在静态状态对系统功耗影响小,适用于对待机功耗敏感的应用。
  • 快速响应:TVS 器件固有的瞬态导通特性,能在纳秒级别响应 ESD/EFT 突发事件。
  • 紧凑封装:SOT-363(小型、焊接兼容)便于密集布局和消费类电子小型化设计。
  • 宽工作温度:适应工业级温度范围,可靠性高。

三、典型应用场景

  • USB、串行接口(UART、RS-232/RS-485)保护(注意结电容对高速信号的影响)
  • 移动终端、便携式设备的供电线/信号线过压保护
  • 工业控制器、传感器接口及外围电路的浪涌防护
  • 消费电子、家电控制板、车载低压电路(非关键安全路径)防护
  • PCB 外部接口(按键、连接器、天线前端需另行评估)

四、电气参数解读与选型建议

  • Vrwm(5V)代表器件在正常反向工作状态下的额定电压,选型时应确保线路直流电压≤Vrwm。若线路常态电压接近或略高于 5V,应考虑更高 Vrwm 的器件以避免误触发。
  • Vbr(6V)与 Vrwm 之间的差值用于识别触发点,器件在达到 Vbr 后开始导通,迅速限制电压。钳位 12V(8/20µs)表示在标准浪涌波形下保护电压上限,需确保被保护器件能承受短时 12V(或在实际负载/阻抗条件下的钳位电压)。
  • Cj=60pF:对高速差分信号(例如 USB2.0 高速或差分串行链路)会产生影响,可能导致信号完整性问题或速度受限。对高频/高速线路,优先考虑低电容型号或将 TVS 放置在非高速路径或使用差分专用 TVS。
  • Ir=5µA:适合对静态电流有要求的系统,但在电池供电极低功耗设计中仍需核查是否满足系统待机要求。

五、封装与热机械说明

  • 封装:SOT-363(多脚微小封装,便于贴装在细间距布局)
  • 焊接兼容主流回流工艺;建议遵循封装厂商的回流和焊盘推荐图样以保证焊接可靠性。
  • 热管理:TVS 在吸收能量时会产生热量,长时间或高频次的冲击会导致结温上升,应用中应避免超过器件 Tj 上限(+150℃),并适当留出热量散逸路径。

六、PCB 布局与使用建议

  • 将 TVS 靠近受保护的连接器/接口放置,缩短输入到 TVS 的轨迹以降低寄生电感和提升保护效果。
  • 为保证快速回路,地线应采用短且宽的回流路径,若条件允许在附近设置单独地平面。
  • 对高速信号,评估 60pF 电容对带宽和阻抗的影响;必要时采用低电容 TVS 或把 TVS 放在不影响信号完整性的分支线上。
  • 对于多线防护,可并联多个单线 TVS 或采用集成多通道型号,视应用需求选择最优方案。

七、选型注意事项与可靠性

  • 确认系统最大工作电压≤Vrwm,且被保护器件能承受 TVS 钳位电压下的短时过压。
  • 评估冲击频次:若系统需要频繁承受高能量冲击,应选用更高 Ppp 或专用浪涌抑制方案。
  • 工作环境(温度、湿度、振动)会影响长期可靠性,设计时留出安全裕度并参照厂商的可靠性数据与应用笔记。
  • 订购信息:型号 SMF05CT,品牌 Slkor(萨科微),封装 SOT-363。

如需针对特定接口(例如 USB2.0、以太网或高速差分信号)做更详细的选型对比与信号完整性评估,可提供电路拓扑与工作频率,我可协助分析并给出优化建议。

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