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Superior Strong and Tough Nacre-Inspired Materials by Interlayer Entanglement

  • Lidan Wang
  • , Bo Wang
  • , Ziqiu Wang
  • , Jiajing Huang
  • , Kaiwen Li
  • , Senping Liu
  • , Jiahao Lu
  • , Zhanpo Han
  • , Yue Gao
  • , Gangfeng Cai
  • , Yingjun Liu
  • , Yan Chen
  • , Yue Lin
  • , Yilun Liu
  • , Chao Gao
  • , Zhen Xu
  • Zhejiang University
  • Fujian Science and Technology Innovation Laboratory for Optoelectronic Information of China
  • Shanxi-Zheda Institute of Advanced Materials and Chemical Engineering
  • Xi'an Jiaotong University
  • CAS - Fujian Institute of Research on the Structure of Matter

Research output: Contribution to journalArticlepeer-review

28 Scopus citations

Abstract

Natural materials teach that mechanical dissipative interactions relieve the conflict between strength and toughness and enable fabrication of strong yet tough artificial materials. Replicating natural nacre structure has yielded rich biomimetic materials; however, stronger interlayer dissipation still waits to be exploited to extend the performance limits of artificial nacre materials. Here, we introduce strong entanglement as a new artificial interlayer dissipative mechanism and fabricate entangled nacre materials with superior strength and toughness, across molecular to nanoscale nacre structures. The entangled graphene nacre fibers achieved high strength of 1.2 GPa and toughness of 47 MJ/m3, and films reached 1.5 GPa and 25 MJ/m3. Experiments and simulations reveal that strong entanglement can effectively dissipate interlayer energy to relieve the conflict between strength and toughness, acting as natural folded proteins. The strong interlayer entanglement opens up a new path for designing stronger and tougher artificial materials to mimic but surpass natural materials.

Original languageEnglish
Pages (from-to)3352-3361
Number of pages10
JournalNano Letters
Volume23
Issue number8
DOIs
StatePublished - 26 Apr 2023

Keywords

  • energy dissipation
  • interlayer entanglement
  • nacre-inspired
  • toughening mechanism
  • ultrahigh molecular weight

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