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Research Article

On the effect of S-parameter stability of antenna and coupler on electrical balance duplexing

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Pages 1352-1367 | Received 26 Oct 2021, Accepted 31 Dec 2021, Published online: 12 Jan 2022

References

  • Laughlin L, Zhang C, Beach MA, et al. Tunable frequency-division duplex RF front end using electrical balance and active cancellation. IEEE Trans Microw Theory Tech. 2018;66(12):5812–5824.
  • Venkatasubramanian SN, Zhang C, Laughlin L, et al. Geometry-based modeling of self-interference channels for outdoor scenarios. IEEE Trans Antennas Propag. 2019;67(5):3297–3307.
  • Nawaz H, Shoaib S, Niazi AH, et al. A compact, bistatic antenna system with very high interport isolation for 2.4 GHz in-band full duplex applications. Int J Antennas Propag. 2020;2021:1–8.
  • Rastegari F, Dousti M, Ghalamkari B. A 0.75 V sub-mW CMOS LNA employing transmitted signal suppression technique in a full-duplex wireless brain-machine interface transceiver. AEU Int J Electron Commun. 2021;132:1–8.
  • mobini Z. Secure cooperative spectrum sharing in full-duplex multi-antenna cognitive radio networks with jamming. AEU Int J Electron Commun. 2020;128:1–13.
  • Guo L, Deng M, Zhang Q, et al. Dual-polarized on-chip antenna for 300 GHz full-duplex communication system. Int J Antennas Propag. 2017;2017:1–8.
  • Laughlin L, Beach MA, Morris KA, et al. Optimum single antenna full duplex using hybrid junctions. IEEE J Sel Areas Commun. 2014;32(9):1653–1661.
  • Nguyen BC, Tran XN, Nguyen TTH, et al. On performance of full-duplex decode-and-forward relay systems with an optimal power setting under the impact of hardware impairments. Wirel Commun Mob Comput. 2020;2020:1–14.
  • Shikh-Bahaei M, Choi YS, Hong D. Full-duplex and cognitive radio networking for the emerging 5G systems. Wireless Commun Mob Comput. 2018;2018:1–2.
  • Aryafar E, Khojastepour M, Sundaresan K, et al. MIDU: enabling MIMO full duplex. In: Proc. ACM Int. Conf. Mob. Comput. Netw.; 2012. p. 257–268.
  • Bharadia D, McMilin E, Katti S. Full duplex radios. Proc. ACM SIGCOMM; 2013. p. 375–386.
  • Duarte M, Dick C, Sabharwal A. Experiment-driven characterization of full-duplex wireless systems. IEEE Trans Wirel Commun. 2012;11(12):4296–4307.
  • Laughlin L, Zhang C, Beach MA, et al. A widely tunable full duplex transceiver combining electrical balance isolation and active analog cancellation. IEEE 81st Veh. Tech. Conf. 2015;2015:1–5.
  • Debaillie B, van den Broek D-J, Lavín C, et al. Analog/RF solutions enabling compact full-duplex radios. IEEE J Sel Areas Commun. 2014;32(9):1662–1673.
  • Laughlin L, Zhang C, Beach MA, et al. Passive and active electrical balance duplexers. IEEE Trans Circuits Syst II: Express Br. 2016;63(1):94–98.
  • Abdelhalem SH, Gudem PS, Larson LE. Hybrid transformer-based tunable differential duplexer in a 90-nm CMOS process. IEEE Trans Microw Theory Tech. 2013;61(3):1316–1326.
  • Laughlin L, Beach MA, Morris KA, et al. Electrical balance duplexing for small form factor realization of in-band full duplex. IEEE Commun Mag. 2015;53(5):102–110.
  • Van Liempd B, Craninckx J, Singh R, et al. A dual-notch +27dBm Tx-power electrical-balance duplexer. In: European Solid-State Circuits Conference; 2014. p. 463–466.
  • Zhang C, Laughlin L, Beach MA, et al. Micro-electromechanical impedance control for electrical balance duplexing. In: Europ. Wireless Conf.; 2016. p. 263–268.
  • Soodmand S, Beach MA, Morris KA. Small antenna with stable impedance and circular polarization. In: IEEE 15th European Conference on Antennas and Propagation (EuCAP); 2021. p. 3–4.
  • Soodmand S, Morris KA, Beach MA. How stability of hybrid coupler characteristic affects front-End isolation of in-band full duplex system. In: 2021 IEEE International IOT, Electronics and mechatronics Conference (IEMTRONICS); 2021. p. 1–6.
  • Available. Available from: https://www.hitek-ltd.co.uk/index.php/downloads/dl/file/id/9822/product/0/ud_14518_rev_b_8ghz_urethane_1_14mm.pdf
  • CST studio suite electromagnetic field simulation software. Dassault Systèmes; 2020. Available from: https://www.3ds.com/products-services/simulia/products/cst-studio-suite/
  • Soodmand S, Morris K, Beach M. Quantization of impedance stability in frequency domain. In: IEEE International Electrical Engineering congress (iEECON2021); 2021. p. 3–4.
  • Taoglas PAD710 – datasheet. Available from: https://www.mouser.co.uk/ProductDetail/Taoglas/PAD710?qs=RuW2Fu252BNMQmuDEM2FwAKT8Yw==
  • Tanaka T, Tsunoda K, Aikawa M. Slot—coupled directional couplers on a both—sided substrate MIC and their applications. Electron Commun Jpn II Electron. 1989;72(3):91–99.
  • Abbosh AM, Bialkowski ME. Design of compact directional couplers for UWB applications. IEEE Trans Microw Theory Tech. 2007;25(22):189–194.
  • Wong MF, Fouad Hanna V, Picon O, et al. Analysis and design of slot-coupled directional couplers between double-sided substrate microstrip lines. In: IEEE MTT-S International Microwave Symposium Digest.; 1991. p. 2123–2129.
  • Krytar 1831 – datasheet. Available from: https://krytar.com/pdf/1831.pdf