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Main Authors: Islam, Md. Saiful, Sakurada, Tomoaki, Cho, Yeongsu
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.09864
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author Islam, Md. Saiful
Sakurada, Tomoaki
Cho, Yeongsu
author_facet Islam, Md. Saiful
Sakurada, Tomoaki
Cho, Yeongsu
contents Hybrid organic-inorganic materials enable systematic structural tuning through chemical modification of organic ligands. Predictive control, however, requires mechanistic understanding of how ligand chemistry and inorganic frameworks jointly determine structural motif selection. Metal-organic chalcogenides (MOCs), where metal-chalcogenide units are covalently bonded to organic ligands, offer an ideal platform in which ligand substitution directly alters crystal structure. Here, we investigate silver selenide-based MOCs with fluorinated phenyl ligands to elucidate governing interactions. Density functional theory with fragment-based energy analysis identifies ligand-ligand interactions as the primary energetic driver of motif selection. Symmetry-adapted perturbation theory further decomposes ligand-ligand interactions and shows that electrostatic interactions are decisive in selecting the preferred motif by selectively stabilizing specific packing arrangements. The results further show that ligand orientation controls the effectiveness of long-range electrostatic interactions, establishing a physically grounded design principle for directing structural motifs in MOCs through targeted control of ligand packing and electrostatics.
format Preprint
id arxiv_https___arxiv_org_abs_2604_09864
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Structural Motif Selection in Fluorinated Metal-Organic Chalcogenides Driven by Ligand Electrostatics
Islam, Md. Saiful
Sakurada, Tomoaki
Cho, Yeongsu
Materials Science
Hybrid organic-inorganic materials enable systematic structural tuning through chemical modification of organic ligands. Predictive control, however, requires mechanistic understanding of how ligand chemistry and inorganic frameworks jointly determine structural motif selection. Metal-organic chalcogenides (MOCs), where metal-chalcogenide units are covalently bonded to organic ligands, offer an ideal platform in which ligand substitution directly alters crystal structure. Here, we investigate silver selenide-based MOCs with fluorinated phenyl ligands to elucidate governing interactions. Density functional theory with fragment-based energy analysis identifies ligand-ligand interactions as the primary energetic driver of motif selection. Symmetry-adapted perturbation theory further decomposes ligand-ligand interactions and shows that electrostatic interactions are decisive in selecting the preferred motif by selectively stabilizing specific packing arrangements. The results further show that ligand orientation controls the effectiveness of long-range electrostatic interactions, establishing a physically grounded design principle for directing structural motifs in MOCs through targeted control of ligand packing and electrostatics.
title Structural Motif Selection in Fluorinated Metal-Organic Chalcogenides Driven by Ligand Electrostatics
topic Materials Science
url https://arxiv.org/abs/2604.09864