Defect migration and phase transformations in 2D iron chloride inside bilayer graphene

Fuente: arXiv
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Main Authors: Liu, Qiunan, Sun, Haiming, Lin, Yung-Chang, Ghorbani-Asl, Mahdi, Kretschmer, Silvan, Cheng, Chi-Chun, Chiu, Po-Wen, Ago, Hiroki, Krasheninnikov, Arkady V., Suenaga, Kazu
Format: Preprint
Published: 2025
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author Liu, Qiunan
Sun, Haiming
Lin, Yung-Chang
Ghorbani-Asl, Mahdi
Kretschmer, Silvan
Cheng, Chi-Chun
Chiu, Po-Wen
Ago, Hiroki
Krasheninnikov, Arkady V.
Suenaga, Kazu
author_facet Liu, Qiunan
Sun, Haiming
Lin, Yung-Chang
Ghorbani-Asl, Mahdi
Kretschmer, Silvan
Cheng, Chi-Chun
Chiu, Po-Wen
Ago, Hiroki
Krasheninnikov, Arkady V.
Suenaga, Kazu
contents The intercalation of metal chlorides, and particularly iron chlorides, into graphitic carbon structures has recently received lots of attention, as it can not only protect this two-dimensional (2D) magnetic system from the effects of the environment, but also substantially alter the magnetic, electronic, and optical properties of both intercalant and host material. At the same time, the intercalation can result in the formation of structural defects, or defects can appear under external stimuli, which can affect materials performance. These aspects have received so far little attention in the dedicated experiments. In this study, we investigate the behavior of atomic-scale defects in iron chlorides intercalated into bilayer graphene (BLG) by using scanning transmission electron microscopy (STEM) and first-principles calculations. We observe transformations between the FeCl2 and FeCl3 phases and elucidate the role of defects in the transformations. Specifically, three types of defects are identified: Fe vacancies in FeCl2 domains, Fe adatoms and interstitials in FeCl3 domains, each exhibiting distinct dynamic behaviors. We also observed a crystalline phase with an unusual stoichiometry of Fe5Cl18 which has not been reported before. Our findings not only advance the understanding of intercalation mechanism of 2D materials but also highlight the profound impact of atomic-scale defects on their properties and potential technological applications.
format Preprint
id arxiv_https___arxiv_org_abs_2507_05665
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Defect migration and phase transformations in 2D iron chloride inside bilayer graphene
Liu, Qiunan
Sun, Haiming
Lin, Yung-Chang
Ghorbani-Asl, Mahdi
Kretschmer, Silvan
Cheng, Chi-Chun
Chiu, Po-Wen
Ago, Hiroki
Krasheninnikov, Arkady V.
Suenaga, Kazu
Materials Science
Mesoscale and Nanoscale Physics
Chemical Physics
The intercalation of metal chlorides, and particularly iron chlorides, into graphitic carbon structures has recently received lots of attention, as it can not only protect this two-dimensional (2D) magnetic system from the effects of the environment, but also substantially alter the magnetic, electronic, and optical properties of both intercalant and host material. At the same time, the intercalation can result in the formation of structural defects, or defects can appear under external stimuli, which can affect materials performance. These aspects have received so far little attention in the dedicated experiments. In this study, we investigate the behavior of atomic-scale defects in iron chlorides intercalated into bilayer graphene (BLG) by using scanning transmission electron microscopy (STEM) and first-principles calculations. We observe transformations between the FeCl2 and FeCl3 phases and elucidate the role of defects in the transformations. Specifically, three types of defects are identified: Fe vacancies in FeCl2 domains, Fe adatoms and interstitials in FeCl3 domains, each exhibiting distinct dynamic behaviors. We also observed a crystalline phase with an unusual stoichiometry of Fe5Cl18 which has not been reported before. Our findings not only advance the understanding of intercalation mechanism of 2D materials but also highlight the profound impact of atomic-scale defects on their properties and potential technological applications.
title Defect migration and phase transformations in 2D iron chloride inside bilayer graphene
topic Materials Science
Mesoscale and Nanoscale Physics
Chemical Physics
url https://arxiv.org/abs/2507.05665