Добавил:
Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:
Скачиваний:
0
Добавлен:
01.04.2024
Размер:
8.04 Mб
Скачать

[21]M. Abdolhamidi and M. Shahabadi, “X-band substrate integrated waveguide amplifier,” IEEE Microwave Wireless Compon. Lett., vol. 18, no. 12, pp. 815–817, 2008.

[22]L. Yan, W. Hong, G. Hua, J. Chen, K. Wu, and T. J. Cui, “Simulation and experiment on SIW slot array antennas,” IEEE Microwave Wireless Compon. Lett., vol. 14, no. 9, pp. 446–448, 2004.

[23]D. Deslandes and K. Wu, “Substrate integrated waveguide leakywave antenna: Concept and design considerations,” in Proc. Asia Pacific Microwave Conf., 2005, pp. 346–349.

[24]A. P. Saghati, M. Mirsalehi, and M. Neshati, “A HMSIW circularly polarized leaky-wave antenna with backward, broadside, and forward radiation,” IEEE Antennas Wireless Propagat. Lett., vol. 13, pp. 451–454, Mar. 2014.

[25]W. D’Orazio and K. Wu, “Substrate-integrated-waveguide circulators suitable for millimeter-wave integration,” IEEE Trans. Microwave Theory Tech., vol. 54, no. 10, pp. 3675–3680, 2006.

[26]S. Yang, C. Zhang, H. K. Pan, A. E. Fathy, and V. K. Nair, “Fre- quency-reconfigurable antennas for multiradio wireless platforms,” IEEE Microwave Mag., vol. 10, no. 1, pp. 66–83, 2009.

[27]G. M. Rebeiz, K. Entesari, I. Reines, S.-J. Park, M. A. El-Tanani, A. Grichener, and A. R. Brown, “Tuning in to RF MEMS,” IEEE Microwave Mag., vol. 10, no. 6, pp. 55–72, 2009.

[28]A. P. Saghati, M. Azarmanesh, and R. Zaker, “A novel switchable singleand multifrequency triple-slot antenna for 2.4-GHz bluetooth, 3.5-GHz WiMax, and 5.8-GHz WLAN,” IEEE Antennas Wireless Propagat. Lett., vol. 9, pp. 534–537, June 2010.

[29]C. A. Balanis, Antenna Theory: Analysis and Design. Hoboken, NJ: Wiley, 2012.

[30]A. P. Saghati and K. Entesari, “A reconfigurable SIW cavitybacked slot antenna with one octave tuning range,” IEEE Trans. Antennas Propagat., vol. 61, no. 8, pp. 3937–3945, 2013.

[31]M. Bozzi, A. Georgiadis, and K. Wu, “Review of substrate-inte- grated waveguide circuits and antennas,” IEEE Microwave, Antennas Propagat., vol. 5, no. 8, pp. 909–920, 2011.

[32]N. Behdad and K. Sarabandi, “Dual-band reconfigurable antenna with a very wide tunability range,” IEEE Trans. Antennas Propagat., vol. 54, no. 2, pp. 409–416, Feb. 2006.

[33]G. Gonzalez, Microwave Transistor Amplifiers: Analysis and Design, vol. 2. Englewood Cliffs, NJ: Prentice Hall, 1997.

[34]J. Mitola III, “Software radios: Survey, critical evaluation and future directions,” IEEE Aerospace Electronic Syst. Mag., vol. 8, no. 4,

pp.25–36, 1993.

[35]D. Cabric, M. S. Chen, D. A. Sobel, J. Yang, and R. W. Brodersen, “Future wireless systems: UWB, 60GHz, and cognitive radios,” in

Proc. IEEE Custom Integrated Circuits Conf., 2005, pp. 793–796.

[36]J. Mitola, “Cognitive radio for flexible mobile multimedia communications,” in Proc. IEEE Int. Workshop Mobile Multimedia Communications, 1999, pp. 3–10.

[37]J.-C. Bohorquez, B. Potelon, C. Person, E. Rius, C. Quendo, G. Tanne, and E. Fourn, “Reconfigurable planar SIW cavity resonator and filter,” in IEEE MTT-S Int. Dig., June 2006, pp. 947–950.

[38]J.-S. G. Hong and M. J. Lancaster, Microstrip Filters for RF/Microwave Applications. Hoboken, NJ: Wiley, 2004.

[39]F. Giuppi, A. Georgiadis, A. Collado, M. Bozzi, and L. Perregrini, “Tunable SIW cavity backed active antenna oscillator,” Electron. Lett., vol. 46, no. 15, pp. 1053–1055, 2010.

[40]M. Armendariz, V. Sekar, and K. Entesari, “Tunable SIW bandpass filters with PIN diodes,” in Proc. 40th European Microwave Conf., Sept. 2010, pp. 830–833.

[41]V. Sekar, M. Armendariz, and K. Entesari, “A 1.2–1.6-GHz sub- strate-integrated-waveguide RF MEMS tunable filter,” IEEE Trans. Microwave Theory Tech., vol. 59, no. 4, pp. 866–876, Apr. 2011.

[42]S. Sirci, J. Martinez, M. Taroncher, and V. Boria, “Varactorloaded continuously tunable SIW resonator for reconfigurable filter design,” in Proc. 41st European Microwave Conf., Oct. 2011,

pp.436–439.

[43]S. Adhikari, Y.-J. Ban, and K. Wu, “Magnetically tunable ferrite loaded substrate integrated waveguide cavity resonator,” IEEE Microwave Wireless Compon. Lett., vol. 21, no. 3, pp. 139–141, Mar. 2011.

54

[44]S. Adhikari, A. Ghiotto, and K. Wu, “Simultaneous electric and magnetic two-dimensional tuning of substrate integrated waveguide cavity resonator,” in IEEE MTT-S Int. Dig., June 2012, pp. 1–3.

[45]F. Mira, J. Mateu, and C. Collado, “Mechanical tuning of substrate integrated waveguide resonators,” IEEE Microwave Wireless Compon. Lett., vol. 22, no. 9, pp. 447–449, 2012.

[46]S. Sirci, J. Martinez, M. Taroncher, and V. Boria, “Analog tuning of compact varactor-loaded combline filters in substrate integrated waveguide,” in Proc. 42nd European Microwave Conf., Oct. 2012, pp. 257–260.

[47]A. Anand, J. Small, D. Peroulis, and X. Liu, “Theory and design of octave tunable filters with lumped tuning elements,” IEEE Trans. Microwave Theory Tech., vol. 61, no. 12, pp. 4353–4364, Dec. 2013.

[48]M. Rutschlin and V. Sokol, “Reconfigurable antenna simulation: Design of reconfigurable antennas with electromagnetic simulation,” IEEE Microwave Mag., vol. 14, no. 7, pp. 92–101, Nov. 2013.

[49]X.-P. Chen and K. Wu, “Substrate integrated waveguide filters: Design techniques and structure innovations,” IEEE Microwave Mag., vol. 15, no. 6, pp. 121–133, Sept. 2014.

[50]A. P. Saghati and K. Entesari, “A miniaturized switchable SIWCBS antenna using positive and negative order resonances,” in Proc. IEEE Antennas Propagation Society Int. Symp., July 2013, pp. 566–567.

[51]S. Somarith, H. Kang, and S. Lim, “Frequency reconfigurable and miniaturized substrate integrated waveguide interdigital capacitor (SIW-IDC) antenna,” IEEE Trans. Antennas Propagat., vol. 62, no. 3, pp. 1039–1045, Mar. 2014.

[52]L.-R. Tan, R. X. Wu, C.-Y. Wang, and Y. Poo, “Magnetically tunable ferrite loaded SIW antenna,” IEEE Antennas Wireless Propagat. Lett., vol. 12, pp. 273–275, Feb. 2013.

[53]L.-R. Tan, R. X. Wu, C.-Y. Wang, and Y. Poo, “Ferrite-loaded SIW bowtie slot antenna with broadband frequency tunability,” IEEE Antennas Wireless Propagat. Lett., vol. 13, pp. 325–328, Feb. 2014.

[54]S. Adhikari, A. Ghiotto, and K. Wu, “Simultaneous electric and magnetic two-dimensionally tuned parameter-agile SIW devices,”

IEEE Trans. Microwave Theory Tech., vol. 61, no. 1, pp. 423–435, Jan. 2013.

[55]F. F. He, K. Wu, W. Hong, L. Han, and X. P. Chen, “A low phasenoise VCO using an electronically tunable substrate integrated waveguide resonator,” IEEE Trans. Microwave Theory Tech., vol. 58, no. 12, pp. 3452–3458, 2010.

[56]Y. Dong and T. Itoh, “A dual-band oscillator with reconfigurable cavity-backed complementary splitring resonator,” in IEEE MTT-S Int. Dig., 2012, pp. 1–3.

[57]Z. Chen, W. Hong, J. Chen, and J. Zhou, “Design of high-Q tunable SIW resonator and its application to low phase noise VCO,”

IEEE Microwave Wireless Compon. Lett., vol. 23, no. 1, pp. 43–45, 2013.

[58]A. P. Saghati and K. Entesari, “A 1.7–2.2 GHz compact low phasenoise VCO using a widely-tuned SIW resonator,” IEEE Microwave Wireless Compon. Lett., vol. 24, no. 9, pp. 622–624, Sept. 2014.

[59]V. Sekar, W. J. Torke, S. Palermo, and K. Entesari, “A self-sustained microwave system for dielectric-constant measurement of lossy organic liquids,” IEEE Trans. Microwave Theory Tech., vol. 60, no. 5, pp. 1444–1455, 2012.

[60]S. Sirci, J. Martinez, and V. Boria, “Low-loss 3-bit tunable SIW filter with PIN diodes and integrated bias network,” in Proc. 43rd European Microwave Conf., Nuremberg, Germany, Oct. 2013, pp. 1211–1214.

[61]M. Almalkawi, L. Zhu, and V. Devabhaktuni, “Magnetically tunable substrate integrated waveguide bandpass filters employing ferrites,” in Proc. 36th Int. Infrared, Millimeter, Terahertz Waves Conf., Oct. 2011, pp. 1–2.

[62]S. Adhikari, A. Ghiotto, S. Hemour, and K. Wu, “Tunable nonreciprocal ferrite loaded SIW phase shifter,” in IEEE MTT-S Int. Dig., 2013, pp. 1–3.

[63]J. D. Barrera and G. H. Huff, “Analysis of a variable SIW resonator enabled by dielectric material perturbations and applications,” IEEE Trans. Microwave Theory Tech., vol. 61, no. 1, pp. 225–233, 2013.

June 2015