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High-frequency rectifiers based on type-II Dirac fermions

delete2021-03-11
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OA
AI
L
Libo Zhang
Z
Zhiqingzi Chen
K
Kaixuan Zhang
L
Lin Wang
H
Huang Xu
L
Li Han
W
Wanlong Guo
Y
Yao Yang
C
Chia-Nung Kuo
C
C. S. Lue
D
Debashis Mondal
J
Jun Fuji
I
I. Vobornik
B
Barun Ghosh
A
Agarwal, Amit
H
Huaizhong Xing *
陈效双 cover
陈效双 (Chen, Xiaoshuang) *
A
Antonio Politano *
W
Wei Lü
DOI:10.1038/s41467-021-21906-wdelete
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Abstract

Abstract

En 中文
The advent of topological semimetals enables the exploitation of symmetry-protected topological phenomena and quantized transport. Here, we present homogeneous rectifiers, converting high-frequency electromagnetic energy into direct current, based on low-energy Dirac fermions of topological semimetal-NiTe2, with state-of-the-art efficiency already in the first implementation. Explicitly, these devices display room-temperature photosensitivity as high as 251mAW(-1) at 0.3THz in an unbiased mode, with a photocurrent anisotropy ratio of 22, originating from the interplay between the spin-polarized surface and bulk states. Device performances in terms of broadband operation, high dynamic range, as well as their high sensitivity, validate the immense potential and unique advantages associated to the control of nonequilibrium gapless topological states via built-in electric field, electromagnetic polarization and symmetry breaking in topological semimetals. These findings pave the way for the exploitation of topological phase of matter for high-frequency operations in polarization-sensitive sensing, communications and imaging. High-frequency rectifiers at terahertz regime are pivotal components in modern communication, whereas the drawbacks in semiconductor junctions-based devices inhibit their usages. Here, the authors report electromagnetic rectification with high signal-to-noise ratio driven by chiral Bloch-electrons in type-II Dirac semimetal NiTe2-based device allowing for efficient THz detection.
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Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.2W
Citations:
91.2W

Organization

N
National Cheng Kung University
Scholars:
2.6W
Papers: 2.3W
Citations: 1.7W
S
shanghai institute of technical physics, cas
Scholars:
1.0K
Papers: 714
Citations: 2
I
istituto officina dei materiali (iom-cnr)
Scholars:
1.1K
Papers: 751
Citations: 0
I
indian institute of technology system (iit system)
Scholars:
9.5W
Papers: 9.9W
Citations: 93
S
ShanghaiTech University
Scholars:
9.6K
Papers: 5.9K
Citations: 1.6W
C
chinese academy of sciences
Scholars:
56.1W
Papers: 44.8W
Citations: 704
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