Site-Selective Fe Incorporation in Layered Polar α-In2Se3: Crystal-Chemical Control of Localized Spin States and Ferroic Responses

Abstract Site-selective transition-metal incorporation provides a crystal-chemical route for tuning local bonding, spin states, and ferroic responses in layered inorganic chalcogenides. Here, Fe-incorporated α-In2Se3 is investigated to clarify how Fe site preference and spatial distribution regulate the structure–property relationship of a polar van der Waals semiconductor. Experimentally, two incorporation regimes are distinguished: lattice-incorporated Fe–In2Se3 (LI-Fe–In2Se3) and cluster-rich Fe–In2Se3 (CR-Fe–In2Se3). Structural, spectroscopic, and microscopic analyses reveal that LI-Fe–In2Se3 preserves the layered α-In2Se3 framework with relatively dispersed Fe-related centers, whereas CR-Fe–In2Se3 exhibits local Fe enrichment, structural inhomogeneity, and red-shifted optical absorption. Piezoresponse force microscopy and magnetic measurements further show pathway-dependent polar switching and spin-related magnetic responses. First-principles calculations further reveal that Fe preferentially substitutes In sites, especially the six-coordinated W4 site, while retaining Fe-centered localized spin-polarized states coupled to the surrounding Se-derived host states. A vertical graphene/LI-Fe–In2Se3/graphene junction demonstrates polarization-associated resistance modulation. These results establish site-selective Fe incorporation as a key crystal-chemical parameter for regulating localized spin states and ferroic responses in layered polar α-In2Se3.

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Journal
Inorganic Chemistry
Published
2026-09-14
DOI
https://doi.org/10.1021/acs.inorgchem.6c03291
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Site-Selective Fe Incorporation in Layered Polar α-In2Se3: Crystal-Chemical Control of Localized Spin States and Ferroic Responses

胡全, Yangsen Hu, Wenhao Li, Jian Liu et al.
Inorganic Chemistry
2D Materials and Applications
article

Site-Selective Fe Incorporation in Layered Polar α-In2Se3: Crystal-Chemical Control of Localized Spin States and Ferroic Responses

胡全, Yangsen Hu, Wenhao Li, Jian Liu, Yuting Zhang, Na Wang, Huai Yang, Hui Lv, Qinghua Lv
article en

Abstract

Abstract Site-selective transition-metal incorporation provides a crystal-chemical route for tuning local bonding, spin states, and ferroic responses in layered inorganic chalcogenides. Here, Fe-incorporated α-In2Se3 is investigated to clarify how Fe site preference and spatial distribution regulate the structure–property relationship of a polar van der Waals semiconductor. Experimentally, two incorporation regimes are distinguished: lattice-incorporated Fe–In2Se3 (LI-Fe–In2Se3) and cluster-rich Fe–In2Se3 (CR-Fe–In2Se3). Structural, spectroscopic, and microscopic analyses reveal that LI-Fe–In2Se3 preserves the layered α-In2Se3 framework with relatively dispersed Fe-related centers, whereas CR-Fe–In2Se3 exhibits local Fe enrichment, structural inhomogeneity, and red-shifted optical absorption. Piezoresponse force microscopy and magnetic measurements further show pathway-dependent polar switching and spin-related magnetic responses. First-principles calculations further reveal that Fe preferentially substitutes In sites, especially the six-coordinated W4 site, while retaining Fe-centered localized spin-polarized states coupled to the surrounding Se-derived host states. A vertical graphene/LI-Fe–In2Se3/graphene junction demonstrates polarization-associated resistance modulation. These results establish site-selective Fe incorporation as a key crystal-chemical parameter for regulating localized spin states and ferroic responses in layered polar α-In2Se3.

Inorganic Chemistry
National Sun Yat-sen University (TW), Sun Yat-sen University (CN), Sun Yat-sen Memorial Hospital (CN), Hubei University of Education (CN), Hubei University of Technology (CN)
National Outstanding Youth Science Fund Project of National Natural Science Foundation of China
Openalex Percentile: Top 25%
2D Materials and Applications
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