Metal‐Hybrid Optical Tamm Cavity THz Detector With High Quality Factor

ABSTRACT Terahertz (THz) optical cavities are essential for enhancing light–matter interactions, yet achieving high‐quality‐factor resonators with practical fabrication and direct device integration remains challenging. Here, we demonstrate a Nb 5 N 6 microbolometer embedded in a hybrid metal–optical Tamm cavity (MOTC), experimentally achieving a Q factor of 1088 at approximately 0.625 THz. The MOTC combines the advantages of Tamm and optical Tamm configurations: an additional distributed Bragg reflector (DBR) suppresses metal‐induced loss, while the bottom Au mirror eliminates transmission leakage. The detector and DBRs are fabricated separately and subsequently assembled, avoiding complex monolithic integration and providing a modular architecture potentially compatible with large‐area detector arrays. Although the highest voltage responsivity occurs at a lower Q configuration, the detector response is jointly determined by local‐field enhancement and detector–cavity impedance matching. A reduced‐order equivalent coupling model is developed to capture the combined effects of local‐field enhancement and detector–cavity impedance matching, providing guidance for balancing cavity enhancement and detector responsivity. The high Q factor provides extended photon lifetimes and enhanced cavity fields, making the MOTC a promising platform for cavity‐enhanced THz detection and light–matter interactions.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-10-08
DOI
https://doi.org/10.1002/lpor.72035
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
Field-Weighted Citation Impact
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article

Metal‐Hybrid Optical Tamm Cavity THz Detector With High Quality Factor

Jian Chen, Xiaoqing Jia, Xuecou Tu, Labao Zhang et al.
Laser & Photonics Review
Metamaterials and Metasurfaces Applications
article

Metal‐Hybrid Optical Tamm Cavity THz Detector With High Quality Factor

Jian Chen, Xiaoqing Jia, Xuecou Tu, Labao Zhang, Yunjie Rui, Runfeng Su, Qingyuan Zhao, Yichen Li, Chao Wan, Lin Kang, Dingxuan Gu, Zhanzhang Mai, Hongshan Jing, Huabing Wang, Baoran Lai, Cheng Liang, Bingnan Yan, Peiheng Wu
article en

Abstract

ABSTRACT Terahertz (THz) optical cavities are essential for enhancing light–matter interactions, yet achieving high‐quality‐factor resonators with practical fabrication and direct device integration remains challenging. Here, we demonstrate a Nb 5 N 6 microbolometer embedded in a hybrid metal–optical Tamm cavity (MOTC), experimentally achieving a Q factor of 1088 at approximately 0.625 THz. The MOTC combines the advantages of Tamm and optical Tamm configurations: an additional distributed Bragg reflector (DBR) suppresses metal‐induced loss, while the bottom Au mirror eliminates transmission leakage. The detector and DBRs are fabricated separately and subsequently assembled, avoiding complex monolithic integration and providing a modular architecture potentially compatible with large‐area detector arrays. Although the highest voltage responsivity occurs at a lower Q configuration, the detector response is jointly determined by local‐field enhancement and detector–cavity impedance matching. A reduced‐order equivalent coupling model is developed to capture the combined effects of local‐field enhancement and detector–cavity impedance matching, providing guidance for balancing cavity enhancement and detector responsivity. The high Q factor provides extended photon lifetimes and enhanced cavity fields, making the MOTC a promising platform for cavity‐enhanced THz detection and light–matter interactions.

Laser & Photonics Review
Institute of Electronics (CN), Purple Mountain Laboratories (CN)
Openalex Percentile: Top 32%
Metamaterials and Metasurfaces Applications
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