• Title/Summary/Keyword: extremely wide stopband

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Transversal wideband bandpass filter with a wide stopband and multiple transmission zeros

  • Wang, Li-Tian;Xiong, Yang;Wang, Zhi-Peng;Gong, Li
    • ETRI Journal
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    • v.43 no.1
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    • pp.133-140
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    • 2021
  • Herein, we present a compact transversal bandpass filter (BPF) with an extremely wide upper stopband and multiple transmission zeros (TZ). Three signal transmission paths with shorted stubs and open-coupled lines allow signal transmission from input port to output port. Two resonant modes can be excited simultaneously and managed easily for bandpass response. Eleven TZs are achieved via transmission path cancelation; an extremely wide upper stopband with an attenuation level better than -12 dB is achieved up to 11.7 f0, where f0 is the center frequency (CF). In addition, bandwidth and CF can be controlled by adjusting electrical lengths. For proof of concept, a wideband BPF centered at 1.04 GHz with 3 dB fractional bandwidths of 49.2% was designed, fabricated, and evaluated. The overall circuit measures 0.045λg × 0.117λg; good agreement was observed between the measured and simulated results.

Miniaturized X-Band Metamaterial Filter for the Ultra-Wide Stopband (차단특성의 초광대역화를 위한 X-밴드용 초소형 메타물질구조 여파기)

  • Kahng, Sung-Tek;Lim, Dong-Jin;Jang, Geon-Ho
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.46 no.12
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    • pp.59-64
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    • 2009
  • In this paper, the design of a new bandstop filter with an ultra-wide stopband is proposed using the metamaterial CRLH-TL. Instead of conventional periodic structures and multi-staged CRLH-TLs, extremely small one-cell type is adopted to circumvent the setbacks of conventional filters such as the lengthened ${\lambda}_g/2$-resonator ones or alternating impedance lowpass filter, and relatively slow skirt. Besides, for a very broad stopband, a strong coupling structure including stepped impedances is suggested and the zero-order resonance is made for effective size-reduction. The validity of the proposed design is proven through the fabrication and measurement, showing the overall size less than ${\lambda}_g/10$, the stopband wider than 12 GHz, 0.7 dB of the insertion loss.