Structural Water‐Enabled Helicity Emergence From an Asymmetric Achiral Molecule

H Hao Kong (State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China) Z Zhen Wu B Bijun Wang (State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China) Y Yuqian Jiang (College of Chemistry and Molecular Sciences, Department of Thyroid and Breast Surgery, Zhongnan Hospital of Wuhan University, College of Life Sciences) J Jun Guan (State Key Laboratory of Bioactive Substance and Function of Natural Medicines, Institute of Materia Medica) M Minghua Liu (CAS Key Laboratory of Colloid, Interface and Thermodynamics, Institute of Chemistry, Chinese Academy of Sciences, No. 2 North First Street, Zhongguancun, Beijing 100190, China) M Meizhen Yin

Abstract

ABSTRACT Helical supramolecular architectures are ubiquitous in nature yet remain challenging to construct from asymmetric achiral molecules. Here, we demonstrate that structural water acts as a symmetry‐breaking and frustration‐generating element in artificial self‐assembly. Using an asymmetric achiral naphthalene derivative ( N1 ) as a model system, we show that trace water fundamentally redirects its assembly pathway. In the presence of structural water, N1 forms racemic P/M helical fibers, whereas only non‐helical aggregates are obtained under anhydrous conditions or with control molecules lacking sufficient hydrogen‐bonding capability. Single‐crystal x‐ray analysis reveals that each water molecule functions as a tetravalent hydrogen‐bonding node, bridging four N1 molecules into a nonplanar C 2 ‐symmetric tetramer. This water‐centered motif introduces geometric incompatibility with optimal π–π stacking, generating packing frustration that is relieved through hierarchical helical twisting. The hydrogen‐bonding network can be reversibly modulated by acid–base stimuli, enabling interconversion between helical and non‐helical morphologies. Moreover, the resulting helices can be biased into homochiral states by chiral aromatic amino acids, revealing a water‐gated chirality transfer mechanism that is absent under anhydrous conditions. This work extends design principles for supramolecular helicity beyond conventional symmetric monomers and highlights the role of structural water in controlling complex self‐assembly pathways.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 08, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

H

Hao Kong

State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China

Z

Zhen Wu

B

Bijun Wang

State Key Laboratory of Chemical Resource Engineering Beijing University of Chemical Technology Beijing P. R. China

Y

Yuqian Jiang

College of Chemistry and Molecular Sciences, Department of Thyroid and Breast Surgery, Zhongnan Hospital of Wuhan University, College of Life Sciences

J

Jun Guan

State Key Laboratory of Bioactive Substance and Function of Natural Medicines, Institute of Materia Medica

M

Minghua Liu

CAS Key Laboratory of Colloid, Interface and Thermodynamics, Institute of Chemistry, Chinese Academy of Sciences, No. 2 North First Street, Zhongguancun, Beijing 100190, China

M

Meizhen Yin