WMSIC Electronic Components

MSKSEMI ZM4735A

ModelZM4735A
PackageLL-41
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 ZM4735A
Type
MSKSEMI
Minimum package
5000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
MSKSEMI
Electronic Component
ZM4735A
Electronic Component
1
Package
LL-41
Electronic Component
Zener Diode
Electronic Component
0.16g
Electronic Component
1
(Zzk)
700Ω
(Zzt)
2Ω
Electronic Component
BM0225936533
Diode
1
Current(Ir)
10uA@3V
Power Dissipation(Pd)
1W
Electronic Component
Electronic Component
Electronic Component
5000

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

ZM4735A 产品概述

一、产品简介

ZM4735A 是美森科(MSKSEMI)推出的一款独立式稳压二极管(齐纳二极管),标称稳压值为 6.2V,适合用作低功率电压基准、过压钳位和电路偏置等场合。该器件在小体积封装(LL-41)内实现 1W 的最大耗散功率,兼顾体积紧凑与电压稳定性,适用于空间受限且需要稳定 6.2V 节点的电子设备。

二、主要参数(概要)

  • 型号:ZM4735A
  • 品牌:MSKSEMI(美森科)
  • 封装:LL-41(小体积封装)
  • 标称稳压值:6.2V
  • 最大耗散功率 Pd:1W
  • 反向电流 Ir:≤10 μA @ Vr = 3V
  • 稳压阻抗(Zzt):2 Ω(在额定测试电流下的动态阻抗)
  • 拐点阻抗(Zzk):700 Ω(在低电流/拐点附近的阻抗特征)
  • 配置形式:独立式(二极管形式)

三、电气特性解读

  • 标称稳压 6.2V:在规定测试电流下(厂方测试条件)器件在反向工作区可稳定保持约 6.2V 的电压。用于需提供参考电压或钳位电压的场合时,可作为简单、经济的解决方案。
  • 最大耗散功率 1W:在良好散热条件下二极管可连续耗散不超过 1W 的功率。由此可估算最大允许稳压电流 Imax ≈ Pd / Vz ≈ 1W / 6.2V ≈ 161 mA(理论值)。实际使用建议做适当余量与热降额。
  • 反向漏电 Ir 10μA @ 3V:在较低反向电压时漏电较小,说明在弱偏置或接近拐点区域的静态漏电控制良好。用于高阻抗输入或低电流参考时,仍需关注漏电对精度的影响。
  • 稳压阻抗 Zzt = 2Ω:表示在额定测试电流下的动态阻抗较低,负载或源电流变化时稳压点的电压变化较小;例如工作电流变化 10 mA 时电压近似变化 20 mV(2 Ω × 10 mA)。
  • 拐点阻抗 Zzk = 700Ω:拐点区(非常小的反向电流区)阻抗很高,说明进入稳压区前电压—电流关系陡峭,设计时需避免长期工作在拐点附近,以免稳定性差。

四、典型应用场景

  • 低功耗电压参考:为模拟电路或小型电源提供 6.2V 参考或偏置。
  • 过压/浪涌钳位:在电源输入或敏感节点对瞬态过压进行钳位保护(需配合限流电阻)。
  • 信号电平转移与稳压源:为传感器、比较器或逻辑接口提供低成本的稳压节点。
  • 测试与实验电路:研制或实验平台上用于快速搭建稳压参考电路。

五、设计与使用建议

  • 串联限流电阻:常用稳压连接为外部电源 —— 串联限流电阻 R —— Zener(反向)。选择 R 时考虑最小工作电流 Iz_min、最大电流 Iz_max(不超过耗散功率),以及允许电压波动。例如:若供应 12V,要求 Iz = 10 mA,则 R = (12 − 6.2) / 10 mA ≈ 580 Ω;稳压二极管耗散 Pd ≈ 6.2V × 10 mA = 62 mW。
  • 功率与热管理:尽量避免长期在接近 1W 的耗散下工作;建议连续工作电流控制在最大允许值的 50–70% 以下,并保证良好散热环境(合理布线、铜箔面积、空气流通)。
  • 工作点选择:为了获得较低的动态阻抗和更稳定的输出,建议在接近厂方测试电流范围内使用,而不要仅在拐点区域工作。
  • 旁路与滤波:在对噪声敏感的参考应用中,可在稳压点并联小电容(如 0.01–1 μF)以滤除高频噪声和抑制振荡。

六、封装与焊接说明

LL-41 为小体积封装,适合占板面积受限的设计。焊接时注意:

  • 采用适配的回流/手工焊接温度曲线,避免过高温度和过长加热时间,以防器件性能退化。
  • 在 PCB 布局时,为提升散热可在焊盘背后留出铜箔并连至大面积地/散热面。
  • 引脚与焊盘连接处保持最短路径,减少串联阻抗与寄生电感。

七、可靠性与测试建议

  • 推荐在样机阶段对温度、负载和长期工作进行加速老化测试,验证在所选驱动电流与环境温度下的稳压稳定性与寿命。
  • 在高温或封闭环境应考虑热降额策略,避免功率积累导致器件过热。
  • 对于关键精度要求的参考源,可通过温度补偿或选用低阻抗、高精度参考源替代。

八、选型与采购提示

ZM4735A 适合需要经济、简单稳压解决方案的场合。在选型时应核对:

  • 目标电路的最大允许稳压电流与耗散功率是否匹配;
  • 对稳压精度、噪声和温漂的要求是否能由此类齐纳二极管满足;
  • 是否需要批量一致性、更高温度稳定性或更低动态阻抗的替代器件。

如需进一步的电气曲线(V–I 特性、温度系数等)或封装图纸,应向 MSKSEMI 官方数据手册/经销商索取完整规格书以进行最终设计确认。

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