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Ferroelastic ionic organic crystals that self-heal to 95.
Al-Handawi, Marieh B; Commins, Patrick; Dalaq, Ahmed S; Santos-Florez, Pedro A; Polavaram, Srujana; Didier, Pascal; Karothu, Durga Prasad; Zhu, Qiang; Daqaq, Mohammed; Li, Liang; Naumov, Pance.
Afiliação
  • Al-Handawi MB; Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Commins P; Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Dalaq AS; Bioengineering Department, King Fahd University of Petroleum & Minerals, Dhahran, Saudi Arabia.
  • Santos-Florez PA; Department of Mechanical Engineering and Engineering Science, University of North Carolina at Charlotte, Charlotte, NC, USA.
  • Polavaram S; Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Didier P; Laboratoire de Bioimagerie et Pathologies, UMR 7021 CNRS Université de Strasbourg, Illkirch, France.
  • Karothu DP; Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Zhu Q; Center for Smart Engineering Materials, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Daqaq M; Department of Mechanical Engineering and Engineering Science, University of North Carolina at Charlotte, Charlotte, NC, USA.
  • Li L; Center for Smart Engineering Materials, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.
  • Naumov P; Department of Mechanical and Aerospace Engineering, Tandon School of Engineering, New York University, Brooklyn, New York, NY, USA.
Nat Commun ; 15(1): 8095, 2024 Sep 16.
Article em En | MEDLINE | ID: mdl-39285159
ABSTRACT
The realm of self-healing materials integrates chemical and physical mechanisms that prevent wear and fracturing and extend the operational lifetime. Unlike the favorable rheology of amorphous soft materials that facilitates efficient contact between fragments, the efficiency of recovery of atomistically ordered materials is restricted by slower interfacial mass transport and the need for ideal physical alignment, which limits their real-world application. We report drastic enhancements in efficiency and recovery time in the self-healing of anilinium bromide, challenging these limitations. Crystals of this material recovered up to 49% within seconds and up to 95% after 100 min via ferroelastic detwinning. The spatial evolution of strain during cracking and healing was measured in real time using digital image correlation. Favorable alignment and strong ionic bonding across the interface of partially fractured crystals facilitate self-healing. This study elevates organic crystals close to the best-in-class self-healing polymers and sets an approach for durable crystal-based optoelectronics.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article