Chiral Molecular Clamp Enabling Selective Chirality Transfer via Arene–Perfluoroarene Interactions

Abstract The precise transfer of chirality from a molecular scaffold to an achiral guest in solution represents a fundamental challenge, because conformational dynamics often obscure stereochemical communication. We designed two chiral ferrocene-based compounds, Fc-2Ala and Fc-3Ala, differing by one methylene in the alkyl linker. Single-crystal X-ray diffraction reveals that Fc-3Ala, bearing a longer propylene linker, adopts a folded clamp-like conformation stabilized by intramolecular hydrogen bonds and π–π stacking. The shorter ethylene linker in Fc-2Ala prevents intramolecular π-stacking, resulting in extended w- or v-shaped hydrogen-bonded conformations. This structural divergence dictates chiroptical properties, recognition behavior, and supramolecular self-assembly morphologies. Spectroscopy and computation demonstrate that folded Fc-3Ala establishes a defined chiral microenvironment with electrostatic complementarity toward electron-rich aromatic guest, enabling effective chirality transfer, whereas nonfolded Fc-2Ala fails. The preorganized clamp also confers morphological robustness. Collectively, subtle linker variation controls molecular folding, offering a strategy for tunable chiral supramolecular platforms, chiroptical materials, and sensors.

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Publication Details

Journal
Nano Letters
Published
2026-10-07
DOI
https://doi.org/10.1021/acs.nanolett.6c03895
Primary Topic
Supramolecular Chemistry and Complexes
Type
article
Field-Weighted Citation Impact
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article

Chiral Molecular Clamp Enabling Selective Chirality Transfer via Arene–Perfluoroarene Interactions

Xiang‐Yu Zhang, Da‐Bin Qin, Kun Huang, Qiuhong Cheng et al.
Nano Letters
Supramolecular Chemistry and Complexes
article

Chiral Molecular Clamp Enabling Selective Chirality Transfer via Arene–Perfluoroarene Interactions

Xiang‐Yu Zhang, Da‐Bin Qin, Kun Huang, Qiuhong Cheng, Kai Li
article en

Abstract

Abstract The precise transfer of chirality from a molecular scaffold to an achiral guest in solution represents a fundamental challenge, because conformational dynamics often obscure stereochemical communication. We designed two chiral ferrocene-based compounds, Fc-2Ala and Fc-3Ala, differing by one methylene in the alkyl linker. Single-crystal X-ray diffraction reveals that Fc-3Ala, bearing a longer propylene linker, adopts a folded clamp-like conformation stabilized by intramolecular hydrogen bonds and π–π stacking. The shorter ethylene linker in Fc-2Ala prevents intramolecular π-stacking, resulting in extended w- or v-shaped hydrogen-bonded conformations. This structural divergence dictates chiroptical properties, recognition behavior, and supramolecular self-assembly morphologies. Spectroscopy and computation demonstrate that folded Fc-3Ala establishes a defined chiral microenvironment with electrostatic complementarity toward electron-rich aromatic guest, enabling effective chirality transfer, whereas nonfolded Fc-2Ala fails. The preorganized clamp also confers morphological robustness. Collectively, subtle linker variation controls molecular folding, offering a strategy for tunable chiral supramolecular platforms, chiroptical materials, and sensors.

Nano Letters
China West Normal University (CN)
Openalex Percentile: Top 24%
Supramolecular Chemistry and Complexes
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Chiral Molecular Clamp Enabling Selective Chirality Transfer via Arene–Perfluoroarene Interactions — Xiang‐Yu Zhang, Da‐Bin Qin, et al. · Nano Letters (2026) | TGRS Research Map | TGRS