WMSIC Electronic Components

ADI/LINEAR MAX2644EXT+T MAX2644EXT

ModelMAX2644EXT+T
PackageSC-70-6
BrandADI/LINEAR
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 24+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR MAX2644EXT+T
Type
ADI/LINEAR
Minimum package
2500 圆盘

Technical parameters

P1dB
13dBm
Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX2644EXT+T
Electronic Component
17dB
Electronic Component
1
Package
SC-70-6
Electronic Component
RFAmplifier
Electronic Component
0.018g
Frequency
2.4GHz~2.5GHz
Electronic Component
1
Electronic Component
BM0258872551
Noise Figure
2dB
Operating Temperature
40℃~+85℃
Operating Voltage
2.7V~5.5V
Operating Current
2.7mA

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

MAX2644EXT+T 产品概述

一、产品简介

MAX2644EXT+T 是一款面向 2.4 GHz ISM 频段的低噪声射频放大器(LNA),适用于对接收灵敏度和功耗有严格要求的无线前端。该器件提供约 17 dB 的增益和典型 2 dB 的噪声系数,工作电压范围 2.7 V 至 5.5 V,工作电流仅 2.7 mA,采用体积小巧的 SC-70-6 封装,适合便携式与电池供电的无线终端。厂商品牌 ADI(原 Maxim/Linear)提供工业级温度范围与卷盘供货(+T 表示卷带)。

二、主要性能参数(典型/典范)

  • 频率范围:2.4 GHz ~ 2.5 GHz(ISM / WLAN / 蓝牙频段)
  • 增益:17 dB
  • 噪声系数(NF):2 dB
  • 工作电压:2.7 V ~ 5.5 V
  • 工作电流:2.7 mA(典型)
  • 1 dB 压缩点(P1dB):-13 dBm
  • 工作温度范围:-40 ℃ ~ +85 ℃
  • 输入回波损耗(Input Return Loss):≈ -15 dB(典型)
  • 输出回波损耗(Output Return Loss):≈ -10 dB(典型)
  • 封装:SC-70-6(极小型表面贴装)

注:以上为器件典型特性,具体数值请以厂商最新数据手册为准。

三、性能解读与设计侧重点

  • 高增益 + 低噪声:17 dB 的增益配合 2 dB 的噪声系数,使该器件非常适合射频接收前端,能明显提升接收灵敏度,尤其在信号较弱的远距或穿透场景中价值突出。
  • 低功耗:2.7 mA 的静态电流配合低压工作,可在 3.3 V 工作时实现约 9 mW 的静态功耗(3.3 V × 2.7 mA ≈ 8.9 mW),适合电池供电或能耗受限的终端。
  • 线性与输出能力:P1dB ≈ -13 dBm 表明器件在大信号环境下输出线性范围有限,作为前端 LNA 时应注意避免过强干扰信号直入(例如近场强发射源),必要时加入限幅或带通滤波阻隔大功率信号。
  • 端口匹配:输入回波损耗约 -15 dB、输出约 -10 dB,器件在 50 Ω 系统下有较好匹配,建议 PCB 设计维持 50 Ω 传输线并在必要时补偿微调元件以获得最佳回波和增益平坦度。

四、典型应用场景

  • Wi‑Fi / WLAN(2.4 GHz)前端接收放大
  • 蓝牙(包括 BLE)收发增强器件链路
  • ZigBee / IEEE 802.15.4 无线传感网络接收端
  • 无线遥控、遥测、物联网终端与模块
  • 手持设备、可穿戴设备与低功耗无线传感器节点

五、应用与布局建议

  • 电源与旁路:在 VCC 引脚与地之间放置低 ESR 的陶瓷旁路电容(例如 0.1 µF)靠近器件电源引脚以抑制高频噪声;建议在电源线上增加足够的滤波与 RF 隔离(如电感或偏置网络),避免供电回路耦合到射频路径。
  • DC 偏置与阻隔:器件输入输出通常需要射频耦合电容(DC blocking)和偏置电路,请参考原厂应用电路;若器件带有使能/偏置引脚,按手册设置以实现功率管理功能。
  • PCB 封装与接地:采用 50 Ω 微带线或带状线设计,保持 RF 路径最短,避免急弯。器件下方及周围应有连续的地平面,并在地平面与器件附近布置多排过孔实现良好热与地连通。
  • 输入保护与选择性滤波:在有强周边发射器的应用中,建议增加带通滤波器或限幅器防止输入过载;必要时在输入端加入 ESD 保护器件。
  • 热管理:器件功耗低,但在高温与高密度布局下应保证良好散热路径,使用地平面与过孔提升散热效率。

六、封装与采购信息

  • 型号示例:MAX2644EXT+T
  • 封装:SC-70-6(极小 SMD)
  • 温度等级:-40 ℃ ~ +85 ℃(工业级)
  • 供货形式:卷带/盘带(+T 表示卷带包装,适合自动贴片流程)
  • 制造商:ADI(原 Maxim/Linear)——请在采购时确认厂商原装与真伪验证,并参考最新数据手册与器件版本说明。

七、选型建议与注意事项

  • 若系统对接收灵敏度要求极高且存在强干扰,考虑在器件前加入选择性滤波器或选择线性度更高但功耗较大的前端器件。
  • 设计时请以厂商数据手册为准,尤其是针脚定义、偏置条件、典型应用电路和元件推荐值;若项目对射频性能或环境可靠性有严格要求,建议申请样片进行板级评估与匹配调整。

如需,我可以根据您的 PCB 版图、工作电压及系统拓扑给出更具体的偏置网络、旁路滤波与匹配元件选型建议。

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