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Unsupervised Learning for Identifying Surface Inhomogeneity on Electronic Structures of High-Tc Cuprate

https://repo.qst.go.jp/records/83932
https://repo.qst.go.jp/records/83932
1205e8d7-53ee-40aa-be48-3f91cb99b9ec
Item type 会議発表用資料 / Presentation(1)
公開日 2021-11-18
タイトル
タイトル Unsupervised Learning for Identifying Surface Inhomogeneity on Electronic Structures of High-Tc Cuprate
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_c94f
資源タイプ conference object
アクセス権
アクセス権 metadata only access
アクセス権URI http://purl.org/coar/access_right/c_14cb
著者 Hideaki, Iwasawa

× Hideaki, Iwasawa

WEKO 1013498

Hideaki, Iwasawa

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Tetsuro, Ueno

× Tetsuro, Ueno

WEKO 1013499

Tetsuro, Ueno

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Masui, Takahiko

× Masui, Takahiko

WEKO 1013500

Masui, Takahiko

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Tajima, Setsuko

× Tajima, Setsuko

WEKO 1013501

Tajima, Setsuko

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Hideaki, Iwasawa

× Hideaki, Iwasawa

WEKO 1013502

en Hideaki, Iwasawa

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Tetsuro, Ueno

× Tetsuro, Ueno

WEKO 1013503

en Tetsuro, Ueno

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内容記述タイプ Abstract
内容記述 Angle-resolved photoemission spectroscopy (ARPES) is a powerful experimental technique in modern materials science because it can directly probe electronic states, which are deeply related to the physical properties of materials. Among the advanced ARPES techniques, spatially-resolved ARPES has recently attracted growing interest because of its capability to obtain local electronic information at the micro- or nano-metric length scales by utilizing a well-focused light source [1]. On the other hand, it is not trivial to analyze and understand the spatial variation of electronic states against massive datasets, typically in 4-dimensional space (energy, momentum, and two spatial axes).
In this work, we will present unsupervised learning using K-means and fuzzy-c-means clustering methods on spatial mapping dataset taken from Y-based high-Tc cuprate superconductor (YBa2Cu3O7-) by micro-ARPES. The spatial mapping dataset clearly showed spatial inhomogeneity on electronic structures due to multiple surface terminations due to BaO or CuO layers on a cleavage (001) plane [2]. We will present how the clustering analysis enables the visualization and identification of such spatial inhomogeneity on the local electronic structures. The advantages and disadvantages of these clustering methods will be detailed, with a comparison of the conventional analysis method.

[1] Hideaki Iwasawa, Electronic Structure 2, 043001 (2020).
[2] H. Iwasawa et al., Phys. Rev. B 98, 081112(R) (2018).
会議概要(会議名, 開催地, 会期, 主催者等)
内容記述タイプ Other
内容記述 The 9th International Symposium on Surface Science (ISSS-9)
発表年月日
日付 2021-11-29
日付タイプ Issued
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