DOI: 10.1063/5.0344987 ISSN: 0003-6951

Bragg-grating engineering enables deterministic resonance control in an on-chip THz filter

Bingnan Yan, Xu Yan, Xuecou Tu, Hongshan Jing, Cheng Liang, Baoran Lai, Zhanzhang Mai, Yunjie Rui, Dingxuan Gu, Chao Wan, Qingyuan Zhao, Labao Zhang, Xiaoqing Jia, Lin Kang, Jian Chen, Peiheng Wu

On-chip filters are important for integrated terahertz (THz) communication and sensing systems. Deterministic control of resonance multiplicity in compact devices enables flexible spectral filtering. Here, we experimentally demonstrate an on-chip silicon THz filter based on a Bragg-grating-assisted Fabry–Pérot cavity, in which the resonance multiplicity is governed by the relation between the Bragg stopband and the cavity free spectral range (FSR). By engineering this stopband–FSR relation, single-, double-, and triple-resonance states are achieved within the 360–390 GHz band, with a packaged insertion loss of approximately 6 dB. The single-resonance device exhibits a through-port transmission minimum approaching −40 dB and a loaded quality factor of QL = 809.5. This work provides a compact strategy for deterministic spectral-state engineering in integrated THz filters.

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