Coherent Absorption Synergizes with Plasmon-Enhanced Graphene Terahertz Photo-thermoelectric Response

Fuente: arXiv
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Main Authors: Li, Runli, Liu, Shaojing, Wang, Ximiao, Zhu, Hongjia, Zhu, Yongsheng, Li, Shangdong, Chen, Huanjun
Format: Preprint
Published: 2025
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author Li, Runli
Liu, Shaojing
Wang, Ximiao
Zhu, Hongjia
Zhu, Yongsheng
Li, Shangdong
Chen, Huanjun
author_facet Li, Runli
Liu, Shaojing
Wang, Ximiao
Zhu, Hongjia
Zhu, Yongsheng
Li, Shangdong
Chen, Huanjun
contents Terahertz (THz) technology shows great potential in 6G communications and imaging, but faces challenges related to detector sensitivity, noise, and cryogenic operation. Here, we integrate interferometric enhancement of absorption (IEA) from a metal reflection layer with a graphene plasmon polariton atomic cavity (PPAC)-based photodetector. The hybrid configuration enhances the in-plane electric field and improves the plasmon-induced thermal gradient. Numerical simulations and photoresponse measurements were employed to systematically investigate the influence of a metal reflective layer on the photothermoelectric behavior of the device, which reveals the IEA design significantly boosts the THz absorption rate in graphene nanostructures and promotes asymmetry in the lateral diffusion of hot carriers. Compared with the bare device, the responsivity of the device is enhanced by approximately 30-folds, while maintaining a response time below 130 microseconds. We further demonstrate the potential of the device to distinguish concealed liquids, advancing high-responsivity, room-temperature, and compact terahertz imaging technology.
format Preprint
id arxiv_https___arxiv_org_abs_2512_22063
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Coherent Absorption Synergizes with Plasmon-Enhanced Graphene Terahertz Photo-thermoelectric Response
Li, Runli
Liu, Shaojing
Wang, Ximiao
Zhu, Hongjia
Zhu, Yongsheng
Li, Shangdong
Chen, Huanjun
Mesoscale and Nanoscale Physics
Terahertz (THz) technology shows great potential in 6G communications and imaging, but faces challenges related to detector sensitivity, noise, and cryogenic operation. Here, we integrate interferometric enhancement of absorption (IEA) from a metal reflection layer with a graphene plasmon polariton atomic cavity (PPAC)-based photodetector. The hybrid configuration enhances the in-plane electric field and improves the plasmon-induced thermal gradient. Numerical simulations and photoresponse measurements were employed to systematically investigate the influence of a metal reflective layer on the photothermoelectric behavior of the device, which reveals the IEA design significantly boosts the THz absorption rate in graphene nanostructures and promotes asymmetry in the lateral diffusion of hot carriers. Compared with the bare device, the responsivity of the device is enhanced by approximately 30-folds, while maintaining a response time below 130 microseconds. We further demonstrate the potential of the device to distinguish concealed liquids, advancing high-responsivity, room-temperature, and compact terahertz imaging technology.
title Coherent Absorption Synergizes with Plasmon-Enhanced Graphene Terahertz Photo-thermoelectric Response
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.22063