Selective Growth of Type‐II Weyl‐Semimetal and Van der Waals Stacking for Sensitive Terahertz Photodetection

Weyl半金属 半金属 太赫兹辐射 光探测 石墨烯 凝聚态物理 物理 堆积 光电子学 范德瓦尔斯力 费米能级 Berry连接和曲率 材料科学 拓扑(电路) 光电探测器 量子力学 带隙 电子 几何相位 核磁共振 组合数学 数学 分子
作者
Yuan He,Liu Yang,Zhen Hu,Libo Zhang,Xiaokai Pan,Yingdong Wei,Shuguang Guo,Xuyang Lv,Mengjie Jiang,Li Han,Dong Wang,Shiqi Lan,Xin Sun,Xiaoshuang Chen,Kai Zhang,Lin Wang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:34 (12) 被引量:34
标识
DOI:10.1002/adfm.202311008
摘要

Abstract The emergence of novel topological semimetal materials, accompanied by exotic non‐equilibrium properties, not only provides a fertile playground for a fundamental level of interest but also opens exciting opportunities for inventing new applications by making use of different light‐induced effects such as nonlinear optics, optoelectronics, especially for the highly pursued terahertz (THz) technology due to the gapless electronic structures. Exploring type‐II Weyl semimetal endowed with the richness of quantum wavefunction and peculiar band structure, underlie strong nonlinear coupling with THz waves. Here, the selective growth of type‐II Weyl semimetal NbIrTe 4 by means of a self‐flux approach is reported, which hosts strongly tilted Weyl cones and exotic Fermi arcs. The oscillating THz field induced by the antenna is engineered in terms of planar metal‐topological semimetal‐metal structure, along with van der Waals stacking, which allows for self‐powered photodetection at room temperature. The results elucidate the superior performance of NbIrTe 4 ‐graphene heterostructure‐based photodetectors with responsivity up to 264.6 V W −1 at 0.30 THz, fast response of 1 µs as well as low noise equivalent power ˂0.28 nW Hz −0.5 is achieved, already exhibiting high‐quality imaging at THz frequency. The results promise superb impacts in exploring topological Weyl semimetals for efficient low‐energy photon harvesting.
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