首页> 外文期刊>Journal of the American Chemical Society >Kinematic and Mechanical Profile of the Self-Actuation of Thermosalient Crystal Twins of 1,2,4,5-Tetrabromobenzene: A Molecular Crystalline Analogue of a Bimetallic Strip
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Kinematic and Mechanical Profile of the Self-Actuation of Thermosalient Crystal Twins of 1,2,4,5-Tetrabromobenzene: A Molecular Crystalline Analogue of a Bimetallic Strip

机译:1,2,4,5-四溴苯的热敏晶体孪生自驱动的运动学和力学曲线:双金属带的分子结晶类似物。

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摘要

A paradigm shift from hard to flexible, organic-based optoelectronics requires fast and reversible mechanical response from actuating materials that are used for conversion of heat or light into mechanical motion. As the limits in the response times of polymer-based actuating materials are reached, which are inherent to the less-than-optimal coupling between the light/heat and mechanical energy in them, a conceptually new approach to mechanical actuation is required to leapfrog the performance of organic actuators. Herein, we explore single crystals of 1,2,4,5-tetrabromobenzene (TBB) as actuating elements and establish relations between their kinematic profile and mechanical properties. Centimeter-size acicular crystals of TBB are the only naturally twinned crystals out of about a dozen known materials that xhibit the thermosalient effect-an extremely rare and visually impressive crystal locomotion. When taken over a phase transition, crystals of this material store mechanical strain and are rapidly self-actuated to sudden jumps to release the internal strain, leaping up to several centimeters. To establish the structural basis for this colossal crystal motility, we investigated the mechanical profile of the crystals from macroscale, in response to externally induced deformation under microscope, to nanoscale, by using nanoindentation. Kinematic analysis based on high-speed recordings of over 200 twinned TBB crystals exposed to directional or nondirectional heating unraveled that the crystal locomotion is a kinematically complex phenomenon that includes at least six kinematic effects. The nanoscale tests confirm the highly elastic nature, with an elastic deformation recovery (60%) that is far superior to those of molecular crystals reported earlier. This property appears to be critical for accumulation of stress required for crystal jumping. Twinned crystals of TBB exposed to moderate directional heating behave as all-organic analogue of a bimetallicstrip, where the lattice misfit between the two crystal components drives reversible deformation of the crystal.
机译:从硬基到柔性有机光电的范式转变需要来自用于将热或光转换为机械运动的致动材料的快速且可逆的机械响应。由于达到了聚合物基致动材料响应时间的限制,这是光/热与机械能之间的耦合不足的固有原因,因此需要一种概念上新颖的机械致动方法来超越有机执行器的性能。在这里,我们探索1,2,4,5-四溴苯(TBB)的单晶作为致动元素,并建立它们的运动学特征和机械性能之间的关系。在约十几种已知的材料中,TBB针状晶体是唯一天然的孪生晶体,它们抑制了热盐效应,这是一种极为罕见且视觉上令人印象深刻的晶体运动。当发生相变时,这种材料的晶体会存储机械应变,并会迅速自我驱动,突然突变以释放内部应变,跃升至几厘米。为了建立这种巨大的晶体运动性的结构基础,我们使用纳米压痕技术,从宏观上对晶体的力学特性进行了研究,以响应在显微镜下外部诱导的变形,直至纳米级。根据对200多个孪晶TBB晶体进行定向或非定向加热的高速记录进行的运动学分析表明,晶体运动是运动学上复杂的现象,至少包括六个运动学效应。纳米级测试证实了高弹性性质,其弹性变形回复率(60%)远远优于先前报道的分子晶体。对于累积晶体跳跃所需的应力而言,此特性似乎至关重要。暴露于适度定向加热的TBB孪生晶体表现为双金属带的全有机类似物,其中两个晶体成分之间的晶格失配驱动晶体的可逆形变。

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  • 来源
    《Journal of the American Chemical Society》 |2013年第37期|13843-13850|共8页
  • 作者单位

    New York University Abu Dhabi, P.O. Box 129188, Abu Dhabi, United Arab Emirates;

    Indian Institute of Science Education and Research, Kolkata, West Bengal 741252, India;

    Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India;

    Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India;

    Department of Metallurgical and Materials Engineering, Middle East Technical University, 06800 Ankara, Turkey;

    Indian Institute of Science Education and Research, Kolkata, West Bengal 741252, India;

    New York University Abu Dhabi, P.O. Box 129188, Abu Dhabi, United Arab Emirates;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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