反強磁性体の磁気挙動を光学的に検出する新手法を開発(UD researchers develop optical method to detect magnetic behavior of antiferromagnets)

2026-01-21 デラウェア大学(UD)

米国のデラウェア大学の研究チームは、光を用いて物質中に隠れた磁性を可視化・制御する新手法を示し、量子技術や次世代計算への応用可能性を明らかにした。通常は外部磁場を必要とする磁性応答を、特殊な光照射によって誘起・検出できる点が特徴である。研究では、結晶対称性や電子の軌道運動に由来する「隠れた磁気秩序」が、円偏光などの光と相互作用することで顕在化することを示した。この成果により、従来は観測が困難だった量子状態を非接触かつ高速に操作できる可能性が広がる。研究者らは、この光誘起磁性が量子コンピューティングやスピントロニクス材料の設計に新たな指針を与えると期待している。

<関連情報>

二次元半導体の欠陥に対する磁気近接結合 Magnetic Proximity Coupling to Defects in a Two-Dimensional Semiconductor

Muhammad Hassan Shaikh,Matthew P. Whalen,Dai Q. Ho,Aqiq Ishraq,Collin Maurtua,Kenji Watanabe,Takashi Taniguchi,Yafei Ren,Anderson Janotti,John Q. Xiao,and Chitraleema Chakraborty
ACS Nano  Published: October 4, 2025
DOI:https://doi.org/10.1021/acsnano.5c09258

Abstract

 

反強磁性体の磁気挙動を光学的に検出する新手法を開発(UD researchers develop optical method to detect magnetic behavior of antiferromagnets)

The ultrathin structure and efficient spin dynamics of two-dimensional (2D) antiferromagnetic (AFM) materials hold promising opportunities for ultrafast memory devices, artificial intelligence circuits, and advanced computing technology. For example, chromium thiophosphate (CrPS4) is one of the most promising 2D A-type AFM materials due to its robust stability in diverse environmental conditions and net out-of-plane magnetic moment in each layer, attributed to anisotropy in crystal axes (a and b). However, their net-zero magnetic moment poses a challenge for detecting the Néel state that is used to encode information. In this study, we demonstrate the detection of the Néel vector by detecting the magnetic order of the surface layer by employing localized defects in tungsten diselenide (WSe2). These defects are ideal candidates for optically active transducers to probe the magnetic order due to their narrow line width and high susceptibility to magnetic field (B-fields). We observed spin-polarized charge transfer in the heterostructure of bulk CrPS4 and single-layer WSe2, indicating type-II band alignment as supported by density functional theory (DFT) calculations. In the A-type AFM regime, the intensity of both right-handed and left-handed circularly polarized light emanating from the sample remains constant as a function of the applied B-field, indicating a constant polarized transition behavior. Our results demonstrate an approach to optically characterizing the magnetic states of 2D bulk AFM material by using both localized and delocalized defect excitons as a probe, highlighting avenues for future research and technological applications.

1700応用理学一般
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