A Triple-Band CMOS Power Amplifier Using Multi-Band and Switchable Matching Network for Wireless Mobile

被引:9
|
作者
Lee, Milim [1 ]
Park, Changkun [1 ]
机构
[1] Soongsil Univ, Sch Elect Engn, Coll Informat Technol, Seoul 06978, South Korea
关键词
Impedance; Impedance matching; Simulation; Wireless communication; Q-factor; Multiaccess communication; Power generation; CMOS; Long-Term Evolution (LTE); matching network; power amplifiers (PAs); transformer; triple-band; wideband code division multiple access (WCDMA); wireless local area network (WLAN); TRANSFORMER; LINEARIZATION; EFFICIENCY; MULTIMODE;
D O I
10.1109/TMTT.2019.2931899
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A triple-band CMOS power amplifier (PA) is presented. We propose a design methodology using an input matching network to support triple-band operation at 0.9, 1.8, and 2.4 GHz. We also propose an output matching network for the triple-band operation. Given that 1.8 and 2.4 GHz are the harmonic components when the PA is operating at 0.9 GHz, we design the output matching network to be switchable to suppress the harmonic components at the operating frequency. Using this switchable network, we obtain an optimum power matching point for each of the three operating frequencies. To verify the feasibility of the proposed structure, we designed a PA using a 180-nm RFCMOS process. It was measured using a wideband code division multiple access (WCDMA), Long-Term Evolution (LTE) at a 10/20-MHz bandwidth and wireless local area network (WLAN) 802.11n applications. The measured output power was 27.2/26.6 dBm, and the power-added efficiency (PAE) was 22.9/30.6 under an adjacent channel leakage ratio (ACLR) of -33 dBc at 0.95/1.8 GHz, respectively, with a WCDMA modulation signal. In the case of an LTE modulation signal, the measured output power was 25.1/23.5 dBm, and the PAE was 27.7/23.6 under an ACLR of 30 dBc for a 10/20-MHz bandwidth, respectively, at 1.8 GHz. The measured output power was 21 dBm, and the PAE was 20 under an error vector magnitude (EVM) of 3.98 at 2.4 GHz for a WLAN modulation signal. Based on the measured results, we successfully verified the feasibility of the proposed PA.
引用
收藏
页码:4220 / 4231
页数:12
相关论文
共 50 条
  • [21] A CONCURRENT TRIPLE-BAND CMOS LOW NOISE AMPLIFIER FOR FOURTH GENERATION APPLICATIONS
    Jang, Yohan
    Choi, Jaehoon
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2011, 53 (02) : 415 - 418
  • [22] Design of a fully integrated concurrent triple-band CMOS low noise amplifier
    Jou, CF
    Cheng, KH
    Lu, ET
    Wang, Y
    PROCEEDINGS OF THE 46TH IEEE INTERNATIONAL MIDWEST SYMPOSIUM ON CIRCUITS & SYSTEMS, VOLS 1-3, 2003, : 1239 - 1242
  • [23] Triple-band wireless local area network monopole antenna
    Wang, H.
    Zheng, M.
    IET MICROWAVES ANTENNAS & PROPAGATION, 2008, 2 (04) : 367 - 372
  • [24] Design of a Triple-Band Power Amplifier Using a Genetic Algorithm and the Continuous Mode Method
    Arabi, Eyad
    de Falco, Paolo Enrico
    Birchall, James
    Morris, Kevin A.
    Beach, Mark
    2017 IEEE TOPICAL CONFERENCE ON RF/MICROWAVE POWER AMPLIFIERS FOR RADIO AND WIRELESS APPLICATIONS (PAWR), 2017, : 48 - 51
  • [25] Highly Efficient Multi-Band Power Amplifier Employing Reconfigurable Matching and Biasing Networks
    Fukuda, Atsushi
    Okazaki, Hiroshi
    Narahashi, Shoichi
    IEICE TRANSACTIONS ON ELECTRONICS, 2010, E93C (07): : 949 - 957
  • [26] A Fully Integrated Triple-Band CMOS Class-E Power Amplifier With a Power Cell Resizing Technique and a Multi-Tap Transformer
    Kim, Woo-Young
    Son, Hyuk Su
    Kim, Joon Hyung
    Jang, Joo Young
    Oh, Inn Yeal
    Park, Chul Soon
    IEEE MICROWAVE AND WIRELESS COMPONENTS LETTERS, 2013, 23 (12) : 659 - 661
  • [27] A Coupling Matrix-Based Design of Triple-Band Matching Network
    Lee, Chieh-Sen
    Yang, Chin-Lung
    IEEE MICROWAVE AND WIRELESS COMPONENTS LETTERS, 2013, 23 (08) : 391 - 393
  • [28] A Fully Integrated Switched Capacitor using Low Temperature and Wet Release Process for Reconfigurable CMOS Triple-band Power Amplifier
    Cho, Hyunok
    Lee, Milim
    Park, Changkun
    Park, Jae Yeong
    PROCEEDINGS OF THE 2019 IEEE ASIA-PACIFIC MICROWAVE CONFERENCE (APMC), 2019, : 1467 - 1469
  • [29] A Pulse-Mode CMOS Power Amplifier for Multi-Band LTE Femtocell Base Stations
    Yang, Hao-Shun
    Chen, Yi-Jan Emery
    Chen, Jau-Horng
    2016 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM (IMS), 2016,
  • [30] A Study on Output Matching Circuits of Power Amplifiers for Multi-Band Mobile Phone Terminals
    Tanaka, Satoshi
    2020 IEEE INTERNATIONAL SYMPOSIUM ON RADIO-FREQUENCY INTEGRATION TECHNOLOGY (RFIT), 2020, : 64 - 66