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在活性阴性固体中对自发失效的拓控制
Sheng Chen1,2, Matthew Ricci3, A Pasha Tabatabai4,5
1Department of Biomedical Engineering, Yale University, New Haven, CT, USA. sheng.chen.sc2959@yale.edu.
活性固体由于拓缺陷而失效. 特定的缺陷安排,如四极子,集中应力,导致材料撕裂和actomyosin网络中的星形形成. 这揭示了缺陷介导的故障机制.
科学领域:
- 软物质物理学 软物质物理学
- 活动物质物理学 活动物质物理学
- 生物物理学的生物物理.
背景情况:
- 活性固体利用能量产生非平衡力,导致自发的机械故障.
- 拓缺陷在集中应力和控制活性材料破裂方面的作用仍然不太清楚.
研究的目的:
- 调查拓缺陷如何影响活性固体中的机械故障.
- 阐明缺陷配置在应力度和材料破裂中的作用.
- 开发活体物质中缺陷驱动现象的预测模型.
主要方法:
- 一个重建的二维actomyosin网络的组装,具有阴性秩序和弹性.
- 对缺陷相互作用和网络行为进行实验性观察.
- 开发和应用一个活性固体骨折模型.
- 使用深度学习模型从拓结构中预测恒星形成.
主要成果:
- 相互作用的多缺陷配置,特别是缺陷四极 (+1/2和-1/2缺陷),对于机械故障至关重要.
- 面向+1/2缺陷的头部四柱体启动了裂开放和材料撕裂.
- 具有相反+1/2缺陷的尾部四柱体会诱导丝聚类和星座形成.
- 一个深度学习模型成功地根据初始的拓缺陷结构预测了恒星形成.
结论:
- 一个缺陷介导的机制驱动活体固体的自发失效.
- 拓缺陷,特别是四极点,控制应力度和材料破裂.
- 这些发现为软体和生物系统的有针对性的损害控制提供了拓设计原则.
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