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PhysRevX.14.041026.pdf3.79 MBAdobe PDF見る/開く
タイトル: Imaging Quantum Interference in a Monolayer Kitaev Quantum Spin Liquid Candidate
著者: Kohsaka, Y.
Akutagawa, S.
Omachi, S.
Iwamichi, Y.
Ono, T.
Tanaka, I.
Tateishi, S.
Murayama, H.
Suetsugu, S.
Hashimoto, K.
Shibauchi, T.
Takahashi, M. O.
Nikolaev, S.
Mizushima, T.
Fujimoto, S.
Terashima, T.
Asaba, T.
Kasahara, Y.
Matsuda, Y.
著者名の別形: 幸坂, 祐生
芥川, 聖
大間知, 秀祐
岩道, 悠希
小野, 孝浩
田中, 伊蕗
立石, 将太郎
村山, 陽奈子
末次, 祥大
橋本, 顕一郎
芝内, 孝禎
高橋, 雅大
ニコラエフ, セルゲイ
水島, 健
藤本, 聡
寺嶋, 孝仁
浅場, 智也
笠原, 裕一
松田, 祐司
キーワード: Local density of states
Majorana fermions
Quantum spin liquid
Honeycomb lattice
Monolayer films
Film deposition
Kitaev model
Liquid helium cooling
Scanning tunneling microscopy
Scanning tunneling spectroscopy
発行日: Oct-2024
出版者: American Physical Society (APS)
誌名: Physical Review X
巻: 14
号: 4
論文番号: 041026
抄録: Single atomic defects are prominent windows to look into host quantum states because collective responses from the host states emerge as localized states around the defects. Friedel oscillations and Kondo clouds in Fermi liquids are quintessential examples. However, the situation is quite different for quantum spin liquid (QSL), an exotic state of matter with fractionalized quasiparticles and topological order arising from a profound impact of quantum entanglement. Elucidating the underlying local electronic property has been challenging due to the charge neutrality of fractionalized quasiparticles and the insulating nature of QSLs. Here, using spectroscopic-imaging scanning tunneling microscopy, we report atomically resolved images of monolayer 𝛼−RuCl₃, the most promising Kitaev QSL candidate, on metallic substrates. We find quantum interference in the insulator manifesting as incommensurate and decaying spatial oscillations of the local density of states around defects with a characteristic bias dependence. The oscillation differs from any known spatial structures in its nature and does not exist in other Mott insulators, implying it is an exotic oscillation involved with excitations unique to 𝛼−RuCl₃. Numerical simulations suggest that the observed oscillation can be reproduced by assuming that itinerant Majorana fermions of Kitaev QSL are scattered across the Majorana Fermi surface. The oscillation provides a new approach to exploring Kitaev QSLs through the local response against defects like Friedel oscillations in metals.
記述: 絶縁体単層膜における未知の波紋の可視化に成功 --量子スピン液体の痕跡? --. 京都大学プレスリリース. 2024-10-30.
著作権等: Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.
URI: http://hdl.handle.net/2433/290673
DOI(出版社版): 10.1103/physrevx.14.041026
関連リンク: https://www.kyoto-u.ac.jp/ja/research-news/2024-10-30-2
出現コレクション:学術雑誌掲載論文等

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