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能自我修复至95%的铁电离子有机晶体。

Ferroelastic ionic organic crystals that self-heal to 95.

作者信息

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 Panče

机构信息

Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.

Bioengineering Department, King Fahd University of Petroleum & Minerals, Dhahran, Saudi Arabia.

出版信息

Nat Commun. 2024 Sep 16;15(1):8095. doi: 10.1038/s41467-024-51625-x.

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.

摘要

自修复材料领域整合了防止磨损和断裂并延长使用寿命的化学和物理机制。与有利于碎片之间有效接触的无定形软材料的良好流变学不同,原子有序材料的恢复效率受到较慢的界面质量传输和理想物理排列需求的限制,这限制了它们在现实世界中的应用。我们报告了溴化苯胺自修复中效率和恢复时间的大幅提高,挑战了这些限制。这种材料的晶体通过铁弹性孪晶在几秒钟内恢复高达49%,在100分钟后恢复高达95%。使用数字图像相关技术实时测量了裂纹和愈合过程中应变的空间演变。部分断裂晶体界面上的良好排列和强离子键促进了自修复。这项研究将有机晶体提升到接近同类最佳自修复聚合物的水平,并为耐用的晶体基光电子学设定了一种方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/548b/11405411/f52db9b05cc7/41467_2024_51625_Fig1_HTML.jpg

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