WMSIC Electronic Components

PCF85063AT/AAZ PCF85063AT

ModelPCF85063AT/AAZ
PackageSO-8
BrandNXP
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
NXP PCF85063AT / AAZ
Type
NXP
Minimum package
1000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
NXP
Electronic Component
PCF85063AT/AAZ
Electronic Component
1
Package
SO-8
Electronic Component
Real-Time Clock (RTC)
Electronic Component
0.271g
Electronic Component
1
Features
Output; Programmable Clock Output
Electronic Component
BM0231111017
Operating Temperature
40℃~+85℃
Operating Voltage
900mV~5.5V
Operating Current
220nA
Interface Type
I2C
Crystal Oscillator Type
Built-in
Output
Electronic Component

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

PCF85063AT/AAZ 产品概述

一、产品简介

PCF85063AT/AAZ 是恩智浦(NXP)面向低功耗时间管理的实时时钟芯片(RTC)。它通过标准 I²C(两线串行)总线与主控器件通信,工作电压范围宽(0.9 V 至 5.5 V),待机与时间维持电流极低(典型工作电流 220 nA),内置振荡器电路并提供闹钟输出,工作温度范围为 -40 ℃ 至 +85 ℃。芯片采用 8 引脚 SO-8 封装(宽度约 3.90 mm),适合空间受限且对功耗敏感的便携或电池供电设备。

二、主要特性(亮点)

  • 标准 I²C 接口:兼容常见的主控 MCU/MPU,两线通信简洁可靠,支持多主机/多从机拓扑。
  • 宽工作电压:0.9 V ~ 5.5 V,直接支持锂电池、纽扣电池或 3.3 V/5 V 系统供电,利于电池备份设计。
  • 超低功耗:时间运行模式下典型电流仅为 220 nA(极低功耗),有利于延长电池寿命。
  • 内置晶振振荡电路:针对 32.768 kHz 晶体优化的振荡器,简化外部元件选型与布局(芯片集成了振荡驱动)。
  • 闹钟输出:可配置的闹钟/中断输出,用于定时唤醒系统或作为外部事件触发信号。
  • 宽温度范围:-40 ℃ 到 +85 ℃,适合工业级及消费类长期运行环境。
  • 紧凑封装:SO-8 封装,便于自动贴装与常用 PCB 布局。

三、典型功能与应用场景

PCF85063AT/AAZ 主要用于需要可靠时钟/日历与低功耗运行的场景,典型功能包括实时时间计时、日历(年/月/日/星期)、闹钟与周期中断等。常见应用有:

  • 便携式设备(手持终端、智能表、便携式测量仪)
  • 物联网终端与传感器节点(需低功耗周期唤醒)
  • 电池供电的消费电子(遥控器、电子标签)
  • 工业控制与数据记录(要求稳定时间戳)
  • 网络设备与仪表的实时时钟备份

四、电气与封装要点

  • 电源与备用:芯片的宽供电范围支持主电源与电池备份策略。设计中应考虑电源切换或电源管理,以确保主电源断电时 RTC 持续工作。
  • 晶体与外设:PCF85063AT/AAZ 的振荡器针对 32.768 kHz 晶体优化。建议选用低漏电、与 PCB 匹配良好的小尺寸晶体,并按厂商建议布局最小回路与去耦。
  • 接口与信号:I²C 总线需上拉电阻,阻值视系统电压与总线容量而定(常见 4.7 kΩ~10 kΩ)。闹钟输出可用于驱动外部中断输入,若用于唤醒主控,请配置合适的拉电阻与防抖措施。
  • 封装信息:SO-8(0.154" / 3.90 mm 宽)适配常见焊盘和自动化贴装流程,便于在多种 PCB 布局中使用。

五、设计与使用建议

  • 电源滤波与去耦:在 VCC 近旁放置 0.1 μF 陶瓷去耦电容,并在 PCB 布局上将电源与晶体走线分离,减少杂散耦合对振荡器的影响。
  • 晶体布局:晶体与晶振引脚之间走短且对称的铜箔,避免穿过地分割或大面积回流;若需要,添加小电容进行振荡器微调,但以厂家推荐为准。
  • I²C 可靠性:根据总线长度与从机数量调整上拉电阻值;如存在长线或电磁干扰,考虑在 SDA/SCL 添加串联阻尼或滤波。
  • 闹钟与唤醒:闹钟输出常用于唤醒主控,建议在设计中考虑电平兼容与上电状态(输出默认状态、极性、开漏/推挽等),并添加防抖或滤波电路防止毛刺误触发。
  • 供电切换策略:若系统需要电池备份,确保有明确的电源优先级切换逻辑,避免在切换瞬间出现复位或错误写入寄存器的情况。

六、总结

PCF85063AT/AAZ 是一款面向低功耗、宽电压与工业温度范围的实时时钟芯片,适用于要求长电池寿命与可靠时间维护的各类嵌入式系统。其 I²C 接口与内置振荡器降低了系统设计复杂度,SO-8 封装便于生产制造。合理的电源与晶体布局、恰当的 I²C 总线设计与闹钟应用策略,能让该芯片在电池供电与工业应用中发挥最佳性能。若需详细寄存器、时序或典型电路,请参照恩智浦官方数据手册以获得准确的寄存器映射与配置建议。

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