TY - GEN
T1 - Towards Performant Nematic Liquid Crystal Enabled Tunable Band-stop Filters with Reconfigurable Notch at 60 GHz for beyond-5G Applications
T2 - 25th International Symposium INFOTEH-JAHORINA, INFOTEH 2026
AU - Li, Jinfeng
AU - Li, Haorong
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper presents the design, analysis, and optimisation of a continuously tunable millimetre-wave (mmW) band-stop filter by harnessing the voltage-dependent permittivity of nematic liquid crystals (LCs). The proposed filter employs an inverted microstrip line (IMSL) topology to house the LC material, enabling electronic reconfiguration of the filter's centre frequency through a low-voltage (<10 V), low-frequency (<1 kHz) bias. This approach overcomes the inherent limitation of discrete tuning in conventional switch-based methods. Through full-wave electromagnetic simulation and systematic geometry parameterisation, we demonstrate a continuous notch-frequency tuning range of 5.8 GHz departing from 60 GHz. The design achieves a high rejection level (>39 dB) and a quality factor (Q) of up to 1.83. Furthermore, this work provides, for the first time, a constitutive loss quantification of the power-dissipation mechanisms in an LC-based tunable filter, offering critical insight into the trade-offs between insertion loss and geometry. The results establish a foundational framework for developing agile, low-power, and fully planar tunable components essential for next-generation mmW communication systems, such as beyond-5G (B5G) and WiGig.
AB - This paper presents the design, analysis, and optimisation of a continuously tunable millimetre-wave (mmW) band-stop filter by harnessing the voltage-dependent permittivity of nematic liquid crystals (LCs). The proposed filter employs an inverted microstrip line (IMSL) topology to house the LC material, enabling electronic reconfiguration of the filter's centre frequency through a low-voltage (<10 V), low-frequency (<1 kHz) bias. This approach overcomes the inherent limitation of discrete tuning in conventional switch-based methods. Through full-wave electromagnetic simulation and systematic geometry parameterisation, we demonstrate a continuous notch-frequency tuning range of 5.8 GHz departing from 60 GHz. The design achieves a high rejection level (>39 dB) and a quality factor (Q) of up to 1.83. Furthermore, this work provides, for the first time, a constitutive loss quantification of the power-dissipation mechanisms in an LC-based tunable filter, offering critical insight into the trade-offs between insertion loss and geometry. The results establish a foundational framework for developing agile, low-power, and fully planar tunable components essential for next-generation mmW communication systems, such as beyond-5G (B5G) and WiGig.
KW - 60 GHz
KW - V-band
KW - band-stop filter
KW - insertion loss
KW - inverted microstrip line
KW - liquid crystal
KW - notch filter
KW - reconfigurable filter
KW - tunable filter
UR - https://www.scopus.com/pages/publications/105038622152
U2 - 10.1109/INFOTEH68759.2026.11477733
DO - 10.1109/INFOTEH68759.2026.11477733
M3 - Conference contribution
AN - SCOPUS:105038622152
T3 - 2026 25th International Symposium INFOTEH-JAHORINA, INFOTEH 2026 - Proceedings
BT - 2026 25th International Symposium INFOTEH-JAHORINA, INFOTEH 2026 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
Y2 - 18 March 2026 through 20 March 2026
ER -