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Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture

Terahertz detection has been highly sought to open a range of cutting‐edge applications in biomedical, high‐speed communications, astronomy, security screening, and military surveillance. Nonetheless, these ideal prospects are hindered by the difficulties in photodetection featuring self‐powered ope...

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Autores principales: Zhang, Libo, Dong, Zhuo, Wang, Lin, Hu, Yibin, Guo, Cheng, Guo, Lei, Chen, Yulu, Han, Li, Zhang, Kaixuan, Tian, Shijian, Yao, Chenyu, Chen, Zhiqingzi, Cai, Miao, Jiang, Mengjie, Xing, Huaizhong, Yu, Xianbin, Chen, Xiaoshuang, Zhang, Kai, Lu, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8655208/
https://www.ncbi.nlm.nih.gov/pubmed/34668344
http://dx.doi.org/10.1002/advs.202102088
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author Zhang, Libo
Dong, Zhuo
Wang, Lin
Hu, Yibin
Guo, Cheng
Guo, Lei
Chen, Yulu
Han, Li
Zhang, Kaixuan
Tian, Shijian
Yao, Chenyu
Chen, Zhiqingzi
Cai, Miao
Jiang, Mengjie
Xing, Huaizhong
Yu, Xianbin
Chen, Xiaoshuang
Zhang, Kai
Lu, Wei
author_facet Zhang, Libo
Dong, Zhuo
Wang, Lin
Hu, Yibin
Guo, Cheng
Guo, Lei
Chen, Yulu
Han, Li
Zhang, Kaixuan
Tian, Shijian
Yao, Chenyu
Chen, Zhiqingzi
Cai, Miao
Jiang, Mengjie
Xing, Huaizhong
Yu, Xianbin
Chen, Xiaoshuang
Zhang, Kai
Lu, Wei
author_sort Zhang, Libo
collection PubMed
description Terahertz detection has been highly sought to open a range of cutting‐edge applications in biomedical, high‐speed communications, astronomy, security screening, and military surveillance. Nonetheless, these ideal prospects are hindered by the difficulties in photodetection featuring self‐powered operation at room temperature. Here, this challenge is addressed for the first time by synthesizing the high‐quality ZrGeSe with extraordinary quantum properties of Dirac nodal‐line semimetal. Benefiting from its high mobility and gapless nature, a metal‐ZrGeSe‐metal photodetector with broken mirror symmetry allows for a high‐efficiency photoelectric conversion assisted by the photo‐thermoelectric effect. The designed architecture features ultrahigh sensitivity, excellent ambient stability, and an efficient rectified signal even above 0.26 THz. Maximum responsivity larger than 0.11 A W(−1), response time of 8.3 µs, noise equivalent power (NEP) less than 0.15 nW Hz(−1/2), and demonstrative imaging application are all achieved. The superb performances with a lower dark current and NEP less than 15 pW Hz(−1/2) are validated through integrating the van der Waals heterostructure. These results open up an appealing perspective to explore the nontrivial topology of Dirac nodal‐line semimetal by devising the peculiar device geometry that allows for a novel roadmap to address targeted terahertz application requirements.
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spelling pubmed-86552082021-12-20 Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture Zhang, Libo Dong, Zhuo Wang, Lin Hu, Yibin Guo, Cheng Guo, Lei Chen, Yulu Han, Li Zhang, Kaixuan Tian, Shijian Yao, Chenyu Chen, Zhiqingzi Cai, Miao Jiang, Mengjie Xing, Huaizhong Yu, Xianbin Chen, Xiaoshuang Zhang, Kai Lu, Wei Adv Sci (Weinh) Research Articles Terahertz detection has been highly sought to open a range of cutting‐edge applications in biomedical, high‐speed communications, astronomy, security screening, and military surveillance. Nonetheless, these ideal prospects are hindered by the difficulties in photodetection featuring self‐powered operation at room temperature. Here, this challenge is addressed for the first time by synthesizing the high‐quality ZrGeSe with extraordinary quantum properties of Dirac nodal‐line semimetal. Benefiting from its high mobility and gapless nature, a metal‐ZrGeSe‐metal photodetector with broken mirror symmetry allows for a high‐efficiency photoelectric conversion assisted by the photo‐thermoelectric effect. The designed architecture features ultrahigh sensitivity, excellent ambient stability, and an efficient rectified signal even above 0.26 THz. Maximum responsivity larger than 0.11 A W(−1), response time of 8.3 µs, noise equivalent power (NEP) less than 0.15 nW Hz(−1/2), and demonstrative imaging application are all achieved. The superb performances with a lower dark current and NEP less than 15 pW Hz(−1/2) are validated through integrating the van der Waals heterostructure. These results open up an appealing perspective to explore the nontrivial topology of Dirac nodal‐line semimetal by devising the peculiar device geometry that allows for a novel roadmap to address targeted terahertz application requirements. John Wiley and Sons Inc. 2021-10-19 /pmc/articles/PMC8655208/ /pubmed/34668344 http://dx.doi.org/10.1002/advs.202102088 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Zhang, Libo
Dong, Zhuo
Wang, Lin
Hu, Yibin
Guo, Cheng
Guo, Lei
Chen, Yulu
Han, Li
Zhang, Kaixuan
Tian, Shijian
Yao, Chenyu
Chen, Zhiqingzi
Cai, Miao
Jiang, Mengjie
Xing, Huaizhong
Yu, Xianbin
Chen, Xiaoshuang
Zhang, Kai
Lu, Wei
Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title_full Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title_fullStr Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title_full_unstemmed Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title_short Ultrasensitive and Self‐Powered Terahertz Detection Driven by Nodal‐Line Dirac Fermions and Van der Waals Architecture
title_sort ultrasensitive and self‐powered terahertz detection driven by nodal‐line dirac fermions and van der waals architecture
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8655208/
https://www.ncbi.nlm.nih.gov/pubmed/34668344
http://dx.doi.org/10.1002/advs.202102088
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