Bioinspired Supramolecular Packing Enables High Thermo-Sustainability

Kai Tao, Yiming Tang, Sigal Rencus-Lazar, Yifei Yao, Bin Xue, Sharon Gilead, Guanghong Wei, Ehud Gazit

Research output: Contribution to journalArticlepeer-review

Abstract

Bottom-up self-assembled bioinspired materials have attracted increasing interest in a variety fields. The use of peptide supramolecular semiconductors for optoelectronic applications is especially intriguing. However, the characteristic thermal unsustainability limits their practical application. Here, we report the thermal sustainability of cyclo-ditryptophan assemblies up to 680 K. Non-covalent interactions underlie the stability mechanism, generating a low exciton-binding energy of only 0.29 eV and a high thermal-quenching-activation energy of up to 0.11 eV. The contributing forces comprise predominantly of aromatic interactions, followed by hydrogen bonding between peptide molecules, and, to a lesser extent, water-mediated associations. This thermal sustainability results in a temperature-dependent conductivity of the supramolecular semiconductors, showing 93 % reduction of the resistance from 320 K to 440 K. Our results establish thermo-sustainable peptide self-assembly for heat-sensitive applications.

Original languageEnglish
Pages (from-to)19037-19041
Number of pages5
JournalAngewandte Chemie - International Edition
Volume59
Issue number43
DOIs
StatePublished - 19 Oct 2020

Keywords

  • aromatic cyclo-dipeptides
  • self-assembly
  • supramolecular semiconductors
  • thermal quenching activation energy
  • thermal sustainability

All Science Journal Classification (ASJC) codes

  • General Chemistry
  • Catalysis

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