DOI: 10.1126/science.aeg1070 ISSN: 0036-8075

Hierarchical crystalline organic-inorganic framework enabling high-modulus toughening in nacre

Hang Chen, Hao Yan, Chuangqi Zhao, Guangze Yang, Chunyi Peng, Jin Huang, Tianyi Zhao, Xuanze Li, Li-Dong Zhao, Lei Jiang, Mingjie Liu

Enhancing toughness in nanocomposites often involves viscoelastic organic phases, but this typically reduces stiffness. We describe a high-modulus toughening mechanism in mature Cristaria plicata nacre arising from a crystalline organic-inorganic framework composed of aragonite nanorods alternately integrated with intratabular biomolecular crystallites. Due to the critical slip-length effect, these crystalline units approach the theoretical limits of modulus and strength. The nanoconfined biomolecular crystallites function as nanopins at interlamellar interphases, alleviating stress concentrations and enabling cross-scale synchronized deformation, thereby conferring high fracture toughness. Inspired by this mechanism, reconstituted nacre fabricated from regenerated aragonite flakes simultaneously achieved high stiffness and crack resistance. These insights offer a promising pathway toward reliable, high-performance structural materials.