Spin Ordering Induced Broadband Photodetection Based on Two‐Dimensional Magnetic Semiconductor α‐MnSe

光探测 自旋电子学 光致发光 半导体 材料科学 凝聚态物理 磁性半导体 马格农 磁性 发光 光电子学 自旋(空气动力学) 纳米点 光电探测器 铁磁性 物理 热力学
作者
Nan Zhou,Zhimiao Zhang,Fakun Wang,Junhao Li,Xiang Xu,Haoran Li,Su Ding,Jinmei Liu,Xiaobo Li,Yong Xie,Rusen Yang,Ying Ma,Tianyou Zhai
出处
期刊:Advanced Science [Wiley]
卷期号:9 (22): e2202177-e2202177 被引量:28
标识
DOI:10.1002/advs.202202177
摘要

Abstract Two‐dimensional (2D) magnetic semiconductors are considered to have great application prospects in spintronic logic devices, memory devices, and photodetectors, due to their unique structures and outstanding physical properties in 2D confinement. Understanding the influence of magnetism on optical/optoelectronic properties of 2D magnetic semiconductors is a significant issue for constructing multifunctional electronic devices and implementing sophisticated functions. Herein, the influence of spin ordering and magnons on the optical/optoelectronic properties of 2D magnetic semiconductor α ‐MnSe synthesized by space‐confined chemical vapor deposition (CVD) is explored systematically. The spin‐ordering‐induced magnetic phase transition triggers temperature‐dependent photoluminescence spectra to produce a huge transition at Néel temperature ( T N ≈ 160 K). The magnons‐ and defects‐induced emissions are the primary luminescence path below T N and direct internal 4 a T 1g → 6 A 1g transition‐induced emissions are the main luminescence path above T N . Additionally, the magnons and defect structures endow 2D α ‐MnSe with a broadband luminescence from 550 to 880 nm, and an ultraviolet–near‐infrared photoresponse from 365 to 808 nm. Moreover, the device also demonstrates improved photodetection performance at 80 K, possibly influenced by spin ordering and trap states associated with defects. These above findings indicate that 2D magnetic semiconductor α ‐MnSe provides an excellent platform for magneto‐optical and magneto‐optoelectronic research.
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