工作在WCDMA 190MHz中频的MAX2388
Abstract
本文提供了一组MAX2387 WCDMA低噪声放大器(LNA)和2140MHz RF、190MHz IF混频器的测试数据,IF输出匹配于190MHz,并提供有材料清单。
更多信息:
MAX238X系列产品简介
MAX2387, MAX2388和MAX2389系列产品是为WCDMA应用设计的接收前端器件。它们在极小的封装内集成了一个低噪声放大器(LNA)和一个高线性度下变频混频器。MAX2387和MAX2388内部包含一个本振(LO)输入缓冲器,而MAX2389不包含LO缓冲器、可提供更低的电流消耗。
高增益和低增益两种工作模式是上述三种器件都具备的特性,MAX2387的增益步长为32dB, MAX2388/MAX2389的增益步长为18dB。这些集成电路都具有用于关闭IC的关断模式。
混频器的三阶非线性指标可以通过连接在BIAS_SET引脚的外部偏置电阻调节,以便权衡所期望的线性度和可以接受的电流消耗。MAX2387和MAX2388的混频特性优化于本振输入缓冲端口的-10dBm典型驱动;MAX2389混频性能则优化于本振输入缓冲端口为-4dBm的典型驱动。该系列产品的本振端口都可配置为单端工作方式或差分工作方式。
性能测试
以下所示的大多数测试数据是MAX2388在190MHz中频(IF)条件下、VCC = 2.8V时得到的。经过验证MAX2387与MAX2389具有相似的性能指标。
测试条件:
- VCC = 2.8V
- 射频RF输入功率 = -30dBm
- 射频RF频率 = 2140MHz; 本振(LO)频率 = 2330MHz
- 双音频间距 = 1MHz
- 本振(LO)功率 = -10dBm (使用MAX2389时为-4dBm)
Parameter | High Gain | Low Gain | Units | Comments |
Gain | 14.6 | -2.8 ( -17 MAX2387) | dB | LNA input loss = 0.2dB and LNA output loss = 0.2dB have been de-embedded from the measurements. |
NF | 1.8 | 7.0 | dB | LNA input loss = 0.2dB has been de-embedded from the measurement. |
IIP3 | 3.5 | 1.0 | dBm | Measured with RF = -20dBm at low-gain mode |
S11 | -10.5 | -12.9 | dB | 10*log10( |S11| ) |
S22 | -13.5 | -16.5 | dB | 10*log10( |S22| ) |
S12 | -25.4 | -12.1 | dB | 10*log10( |S12| ) |
Icc | 9.9 | 6.8 | mA |
Parameter | High Gain | Low Gain | Units | Comments |
Gain | 10.5 | 9.5 | dB | Mixer input loss = 0.2 and IF balun insertion loss = 1.0dB have been de-embedded. |
NF | 6.8 | 6.2 | dB | Mixer input loss = 0.2dB has been de-embedded from the measurement. |
IIP3 | 10.0 | 1.8 | dBm | |
IIP2 | 17.0 | 16.8 | dBm | With single-ended LO drive |
IIP2 | 31.2 | 30.5 | dBm | With differential LO drive |
LO Leakage at IF Port | -25.5 | -25.5 | dBm | LO = -10 dBm @2330MHz MAX2387/88 |
LO Leakage at RF Port | -45 | -45 | dBm | LO = -10 dBm @2330MHz MAX2387/88 |
Frequency | S11 | S21 | S12 | S22 | ||||
(GHz) | Mag(dB) | Phase(Deg) | Mag(dB) | Phase(Deg) | Mag(dB) | Phase(Deg) | Mag(dB) | Phase(Deg) |
1.0 | -2.1286 | -58.278 | 12.847 | 133.75 | -32.155 | 74.423 | -0.945 | -23.033 |
1.1 | -2.3856 | -62.382 | 12.331 | 131.49 | -32.022 | 80.579 | -0.964 | -25.008 |
1.2 | -2.6618 | -65.862 | 12.154 | 128 | -31.585 | 73.547 | -1.089 | -24.881 |
1.3 | -2.855 | 69.138 | 11.703 | 126.22 | -30.677 | 77.068 | -1.285 | -25.903 |
1.4 | -3.1572 | -72.628 | 11.296 | 123.77 | -31.095 | 76.873 | -1.325 | -26.516 |
1.5 | -3.4104 | -75.839 | 11.253 | 120.6 | -30.572 | 75.955 | -1.467 | -26.709 |
1.6 | -3.7441 | -78.872 | 11.206 | 121.03 | -30.134 | 77.315 | -1.625 | -27.577 |
1.7 | -4.1285 | -82.259 | 10.622 | 117.69 | -30.08 | 80.001 | -1.798 | -28.049 |
1.8 | -4.3986 | -85.465 | 10.986 | 116.13 | -29.453 | 82.934 | -1.925 | -29.221 |
1.9 | -4.7755 | -89.3 | 10.436 | 115.06 | -29.922 | 83.366 | -2.098 | -29.713 |
2.0 | -5.2184 | -92.921 | 10.444 | 110.19 | -29.151 | 84.624 | -2.267 | -30.994 |
2.1 | -5.6356 | -96.942 | 10.353 | 108.99 | -28.898 | 86.776 | -2.345 | -32.867 |
2.2 | -6.0176 | -101 | 10.29 | 105.5 | -28.514 | 87.56 | -2.451 | -35.262 |
2.3 | -6.4621 | -106.27 | 10.58 | 104.32 | -27.631 | 89.437 | -2.685 | -38.079 |
2.4 | -6.9126 | -111.35 | 9.8114 | 100.88 | -27.764 | 88.93 | -2.835 | -42.528 |
2.5 | -7.2807 | -117.04 | 10.106 | 95.216 | -27.384 | 88.897 | -3.018 | -46.811 |
2.6 | -7.7233 | -122.7 | 9.7148 | 95.186 | -26.945 | 88.47 | -3.077 | -51.827 |
2.7 | -7.9908 | -130.37 | 9.0991 | 88.322 | -26.888 | 93.211 | -3.077 | -57.443 |
2.8 | -8.2315 | -137.57 | 9.6216 | 84.239 | -26.285 | 89.688 | -3.257 | -63.369 |
2.9 | -8.2342 | -144.27 | 9.0162 | 85.306 | -26.094 | 95.284 | -3.305 | -69.697 |
3.0 | -8.3826 | -151.69 | 8.5833 | 77.645 | -26.065 | 91.953 | -3.198 | -75.708 |
混频器OIM3随射频输入功率的变化曲线图
测试条件与上述增益、IIP3和噪声系数的测试条件相同。
图1. MAX2388混频器IIM3随输入功率(Pin)变化曲线
混频器IIP3随VCC的变化曲线图
混频器具有高线性度、低消耗电流等特点。反馈环路是用来在低电流消耗条件下改善IIP3的一项新技术。然而,反馈环路在VCC = 2.7V时可提供最佳指标。如果VCC偏离2.7V,IIP3就不能达到近似+12dBm的最优值。下图所示为IIP随VCC的变化情况。
图2. 混频器IIP3随VCC变化曲线图
测试装置
图3. MAX2388低噪声放大器IIP3的测量
图4. MAX2388混频器IIP3的测量
图5. MAX2388低噪声放大器噪声系数的测量
图6. MAX2388混频器噪声系数的测量
MAX2387 Evaluation Kit (PDF, 45K)