Chiral gypsum with high‐performance mechanical properties induced by self‐assembly of chiral amino acid on an amorphous mineral

Author:

Li Haibin12,Sun Zhiheng1,Liu Yue1,Xing Yi1,Gao Jing1,Shi Aihong12,Yu Yadong3,Long Jin1,Song Dong‐Po4,Jin Chao5,McKee Marc D.67,Ma Jun‐An1,Jiang Wenge12ORCID

Affiliation:

1. Department of Chemistry, Tianjin Key Laboratory of Molecular Optoelectronic Sciences, and Tianjin Collaborative Innovation Center of Chemical Science & Engineering Tianjin University Tianjin China

2. Key Laboratory of Resource Chemistry and Eco‐Environmental Protection in Tibetan Plateau of State Ethnic Affairs Commission, School of Chemistry and Chemical Engineering Qinghai Minzu University Xining China

3. School of Chemical Engineering and Technology Tianjin University Tianjin China

4. Tianjin Key Laboratory of Composite and Functional Materials, School of Materials Science and Engineering Tianjin University Tianjin China

5. Tianjin Key Laboratory of Low Dimensional Materials Physics and Processing Technology, School of Science Tianjin University Tianjin China

6. Faculty of Dental Medicine and Oral Health Sciences McGill University Montreal Canada

7. Department of Anatomy and Cell Biology, School of Biomedical Sciences, Faculty of Medicine and Health Sciences McGill University Montreal Canada

Abstract

AbstractFunctional chiral suprastructures are common in biology, including in biomineralization, and they are frequently found in many hardened structures of both marine and terrestrial invertebrates, and even in pathologic human otoconia of the inner ear. However, the biological processes by which they form remain unclear. Here, we show that chiral hierarchical suprastructures of calcium sulfate dihydrate (gypsum) can be induced by the chiral Aspartic acid (Asp). Left‐handed (clockwise) morphology of gypsum is induced by the d‐enantiomer of Asp, while right‐handed (counterclockwise) morphology is induced by the l‐enantiomer. A layer‐by‐layer, oriented inclination mineral growth model controlled by continuous self‐assembly of chiral Asp enantiomers on an amorphous calcium sulfate mineral surface of gypsum platelet layers is postulated to produce these chiral architectures. This hybrid amorphous‐crystallized chiral and hierarchical suprastructure of gypsum displays outstanding mechanical properties, including high‐performance strength and toughness. Furthermore, the induction of chiral gypsum suprastructures can be more generally extended from specific acidic amino acids to other (nonamino acid) molecules. These findings contribute to our understanding of the molecular mechanisms by which biomineral‐associated enantiomers exert structural control over chiral architectures commonly seen in biominerals and in biomimetically synthesized functional materials.

Publisher

Wiley

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