首页 / 百科
MAX19790 High-performance RF V
2010-07-11 00:00:00
Maxim's new 250MHz to 4000MHz voltage-variable attenuator (VVA) sets new benchmarks for flatness over frequency and attenuation settings.
VVA sets new benchmarks for flatness over frequency and attenuation settings.
SUNNYVALE, CA—July 8, 2010—Maxim Integrated Products (NASDAQ: MXIM) introduces the MAX19790, a dual, monolithic voltage-variable attenuator (VVA) spanning the 250MHz to 4000MHz frequency band. Designed as a general-purpose block for high-performance wireless infrastructure applications, this VVA delivers 44dB of linearly controlled dynamic range with industry-leading S21 flatness over frequency and all attenuation settings. Its unique combination of superb flatness and linear attenuation control makes the MAX19790 an ideal VVA for broadband infrastructure applications like cellular base stations, microwave point-to-point systems, and SatCom equipment.
The MAX19790 is composed of two state-of-the-art VVAs integrated into one monolithic IC. Designed using a proprietary, monolithic SiGe BiCMOS process, each attenuator incorporates a patented control circuit that provides 22dB of attenuation range with a linear control slope of 10dB/V. Both attenuators share a common analog control circuit, and they can be cascaded together to yield 44dB of total dynamic range with a combined linear control slope of 20dB/V. This wide-ranging linear control eliminates the need for complex linearization circuits and algorithms, thus reducing solution cost and complexity.
Competing RF VVAs, such as PIN diode and MESFET-based attenuators, possess nonlinear control slopes that complicate automatic gain control (AGC) and gain trim algorithms. Many of these alternative solutions require external control-slope linearization circuitry, which adds to the overall cost, complexity, and repeatability of the VVA design. These competing attenuators also suffer from poor attenuation flatness over frequency as the VVA is cycled through its full adjustment range. Finally, the typical VVA "frequency tilt" may change as a function of the VVA's attenuation settings and cannot be compensated by simple equalization schemes with fixed slopes. Degradations in system error-vector magnitude (EVM) and adjacent-channel leakage rejection (ACLR) then result as the VVA is cycled through its attenuation range.
The attenuators used in the MAX19790 circumvent these degradations by offering excellent S21 flatness performance over wide frequency bands and attenuation ranges. When operating over any 125MHz contiguous band between 950MHz to 2150MHz (a common band for SatCom applications), the MAX19790 delivers typical and maximum flatness levels of merely 0.13dB and 0.89dB peak-to-peak, respectively, through 30dB to total attenuation.
If even greater S21 flatness is desired, adding a simple equalizer can further improve the circuit's performance. Figure 1 shows how the S21 response at the VVA's minimum attenuation setting has been subtracted out (i.e., normalized) to represent the simplest of equalization corrections. The MAX19790's S21 response curves remain virtually flat through 30dB of attenuation control range for a multitude of popular communications frequency bands (each spanning 125MHz of contiguous frequency coverage).
The MAX19790 is available in a compact (6mm x 6mm), lead-free 36-pin TQFN package. Prices start at $5.24 (1000-up, FOB USA).
Maxim Integrated Products is a publicly traded company that designs, manufactures, and sells high-performance semiconductor products. The Company was founded over 25 years ago with the mission to deliver innovative analog and mixed-signal engineering solutions that add value to its customers' products. To date, it has developed over 6300 products serving the industrial, communications, consumer, and computing markets.
最新内容
- Efuse是什么?聊聊芯片级的eFuse
- 英飞凌推出XENSIV胎压传感器,满足智能胎压监测系统的需
- FPGA学习笔记:逻辑单元的基本结构
- 创造多样信号的万能工具:函数/任意波形发生器
- 位移传感器结构类型及工作原理与应用
- 开关电源供应器的功能、应用场景以及重要性
- 重庆东微电子推出高性能抗射频干扰MEMS硅麦放大器芯片
- 拒绝一次性芯片,新技术:无线升级芯片
- 芯片迈向系统化时代:EDA软件的创新之路
- 智能安全帽功能-EIS智能防抖摄像头4G定位生命体征监测
- 卫星应用受关注,GNSS导航芯片/模块发展加速
- AI边缘智能分析设备:智慧食堂明厨亮灶的智能化应用
- 美光低功耗内存解决方案助力高通第二代骁龙XR2平台
- 浅谈芯片常用的解密器
- 电路板技术水平和质量水平,影响着机器人赛道的发展前景
- 直播回顾 | 宽禁带半导体材料及功率半导体器件测试
- 写flash芯片时为什么需要先擦除?
- DigiKey 凭借品牌更新荣获四项 MarCom 大奖
- 高精度3D视觉技术,助力工业机器人实现汽车零部件高效上
- 不只是芯片 看看传感器技术我们离世界顶级有多远
- 加特兰毫米波雷达SoC芯片赋能室内安防新应用
- 所有遥不可及,终因AI触手可及
- 一种基于聚合物的化学电阻式传感器使患者检测更容易
- MTK天玑9300重磅发布:全大核时代到来,330亿参数AI大模型
- 如何测量温度传感器的好坏?
- ACCEL光电芯片,性能超GPU千倍,新一代计算架构将更早来临
- 如何利用示波器快速测量幅频特性?有何注意事项?
- 射频连接器使用技巧与注意事项
- STC15W芯片A/D、D/A转换的简单使用
- 群芯微车规级认证的光电耦合器备受电池BMS和电驱电控
- 芯朋微:服务器配套系列芯片已通过客户验证 可应用于AI
- 新能源高压连接器高压互锁(HVIL)功能详解
- FPGA和AI芯片算哪一类?芯片的不同分类方式
- MPS全系列电机驱动产品,助力新能源汽车实现更好的智能
- 基于穿隧磁阻效应(TMR)的车规级电流传感器
- 豪威发布新款 4K 分辨率图像传感器,适用于安防摄像头
- 苹果发布M3系列新款MacBook Pro/iMac:业界首批PC 3nm芯
- 硅谷:设计师利用生成式 AI 辅助芯片设计
- 电容式触摸按键屏中应用的高性能触摸芯片
- DigiKey 推出《超越医疗科技》视频系列的第一季

手机 |
相关内容
RF输入级电路
RF输入级电路,电路图,信号处理电子电路图,RF输入级电路 RF,RF输入级电路RF噪声电桥电路图
RF噪声电桥电路图,电路图,电工基础电路图,RF噪声电桥电路图 电桥,RF噪声电桥电路图两范围RF功率计电路图
两范围RF功率计电路图,电路图,电工基础电路图,两范围RF功率计电路图 功率,两范围RF功率计电路图RF磁测量仪电路图
RF磁测量仪电路图,电路图,电工基础电路图,RF磁测量仪电路图 测量仪,RF磁测量仪电路图RF输出指示器电路图
RF输出指示器电路图,电路图,电工基础电路图,RF输出指示器电路图 RF,RF输出指示器电路图超力牌RC RS RF-9728A RC RS RF-97
超力牌RC RS RF-9728A RC RS RF-979,电路图,热水器电路图,超力牌RC RS RF-9728A RC RS RF-979 电路图,超力牌RC RS RF-9728A RC RSRF开关电源电路图
RF开关电源电路图,电路图,信号处理电子电路图,RF开关电源电路图 电路图,RF开关电源电路图RF信号检波电路图
RF信号检波电路图,电路图,信号处理电子电路图,RF信号检波电路图 电路图,RF信号检波电路图