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Article

Compact GCPW–SSPP Low-Pass Filter with Wide Stopband and Suppressed Radiation Using Multi-Arm Star-Shaped Slots

Zhejiang Key Laboratory of Digital Fashion and Data Governance, Zhejiang SciTech University, Hangzhou 310018, China
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Author to whom correspondence should be addressed.
Electronics 2026, 15(12), 2513; https://doi.org/10.3390/electronics15122513
Submission received: 8 May 2026 / Revised: 1 June 2026 / Accepted: 5 June 2026 / Published: 7 June 2026

Abstract

Existing ground-slotted coplanar waveguide (CPW) spoof surface plasmon polariton (SSPP) low-pass filters (LPFs) remain constrained by the difficulty of achieving a wide stopband while maintaining a compact size, as well as by undesired radiation leakage arising from their open-aperture slot configuration. To address these issues, a grounded coplanar waveguide spoof surface plasmon polariton (GCPW-SSPP) low-pass filter based on a multi-arm star-shaped slot (MASS) loading topology is proposed. An equivalent-circuit interpretation and full-wave dispersion analysis show that the multi-arm slots introduce enhanced distributed reactive loading, thereby lowering the asymptotic frequency and enabling compact SSPP implementations. The near-field characteristics further demonstrate tighter electromagnetic confinement, as reflected by an approximately 48% reduction in the electric-field confinement width along the z-direction. To alleviate the trade-off between miniaturization and wide-stopband performance in cascaded SSPP LPFs, the single-cell S-parameters of the proposed topology are investigated. A single MASS unit exhibits a sharp cutoff and a deep transmission notch, allowing a wide stopband to be obtained with fewer cascaded cells. Radiation characteristics are subsequently quantified by a loss-decomposition method, and the MASS topology is found to suppress the radiation leakage of open-aperture ground-slotted structures, yielding a maximum radiation-loss reduction of approximately 75%. To validate the design methodology, a MASS-loaded GCPW-SSPP LPF is designed, fabricated, and measured. The measured results are in good agreement with the simulated ones, confirming the effectiveness of the proposed scheme. By simultaneously achieving a wide stopband, compact size, and suppressed radiation leakage, the proposed filter offers a promising low-interference filtering solution for highly integrated microwave and RF front-end systems.
Keywords: spoof surface plasmon polariton (SSPP); ground-coplanar waveguide (GCPW); low-pass filter (LPF); stopband suppression; radiation leakage suppression spoof surface plasmon polariton (SSPP); ground-coplanar waveguide (GCPW); low-pass filter (LPF); stopband suppression; radiation leakage suppression

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MDPI and ACS Style

Ding, Z.; Li, L. Compact GCPW–SSPP Low-Pass Filter with Wide Stopband and Suppressed Radiation Using Multi-Arm Star-Shaped Slots. Electronics 2026, 15, 2513. https://doi.org/10.3390/electronics15122513

AMA Style

Ding Z, Li L. Compact GCPW–SSPP Low-Pass Filter with Wide Stopband and Suppressed Radiation Using Multi-Arm Star-Shaped Slots. Electronics. 2026; 15(12):2513. https://doi.org/10.3390/electronics15122513

Chicago/Turabian Style

Ding, Zhengzheng, and Lin Li. 2026. "Compact GCPW–SSPP Low-Pass Filter with Wide Stopband and Suppressed Radiation Using Multi-Arm Star-Shaped Slots" Electronics 15, no. 12: 2513. https://doi.org/10.3390/electronics15122513

APA Style

Ding, Z., & Li, L. (2026). Compact GCPW–SSPP Low-Pass Filter with Wide Stopband and Suppressed Radiation Using Multi-Arm Star-Shaped Slots. Electronics, 15(12), 2513. https://doi.org/10.3390/electronics15122513

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