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从分子到相互作用再到晶体工程:有机固体的力学性能

From Molecules to Interactions to Crystal Engineering: Mechanical Properties of Organic Solids.

作者信息

Saha Subhankar, Mishra Manish Kumar, Reddy C Malla, Desiraju Gautam R

机构信息

Solid State and Structural Chemistry Unit , Indian Institute of Science , Bangalore 560 012 , India.

Indian Institute of Science Education and Research (IISER) Kolkata , Mohanpur Campus, Mohanpur 741 246 , India.

出版信息

Acc Chem Res. 2018 Nov 20;51(11):2957-2967. doi: 10.1021/acs.accounts.8b00425. Epub 2018 Oct 23.

Abstract

Mechanical properties of organic molecular crystals have been noted and studied over the years but the complexity of the subject and its relationship with diverse fields such as mechanochemistry, phase transformations, polymorphism, and chemical, mechanical, and materials engineering have slowed understanding. Any such understanding also needs conceptual advances-sophisticated instrumentation, computational modeling, and chemical insight-lack of such synergy has surely hindered progress in this important field. This Account describes our efforts at focusing down into this interesting subject from the viewpoint of crystal engineering, which is the synthesis and design of functional molecular solids. Mechanical properties of soft molecular crystals imply molecular movement within the solid; the type of property depends on the likelihood of such movement in relation to the applied stress, including the ability of molecules to restore themselves to their original positions when the stress is removed. Therefore, one is interested in properties such as elasticity, plasticity, and brittleness, which are linked to structural anisotropy and the degree to which a structure veers toward isotropic character. However, these matters are still by no means settled and are system dependent. While elasticity and brittleness are probably displayed by all molecular solids, the window of plasticity is perhaps the one that is most amenable to crystal engineering strategies and methods. In all this, one needs to note that mechanical properties have a kinetic component: a crystal that is elastic under slow stress application may become plastic or brittle if the same stress is applied quickly. In this context, nanoindentation studies have shown themselves to be of invaluable importance in understanding structural anisotropy. Several problems in solid state chemistry, including classical ones, such as the melting point alternation in aliphatic straight chain dicarboxylic acids and hardness modulation in solid solutions, have been understood more clearly with this technique. The way may even be open to picoindentation studies and the observation of molecular level movements. As in all types of crystal engineering, an understanding of the intermolecular interactions can lead to property oriented crystal design, and we present examples where complex properties may be deliberately turned on or off in organic crystals: one essentially fine-tunes the degree of isotropy/anisotropy by modulating interactions such as hydrogen bonding, halogen bonding, π···π interactions, and C-H···π interactions. The field is now wide open as is attested by the activities of several research groups working in the area. It is set to take off into the domains of smart materials, soft crystals, and superelasticity and a full understanding of solid state reactivity.

摘要

多年来,有机分子晶体的力学性能已受到关注并得到研究,但该主题的复杂性及其与机械化学、相变、多晶型以及化学、机械和材料工程等不同领域的关系减缓了人们的理解。任何此类理解还需要概念上的进步——精密的仪器、计算建模和化学洞察力——缺乏这种协同作用无疑阻碍了这一重要领域的进展。本综述从晶体工程的角度描述了我们聚焦于这个有趣主题的努力,晶体工程是功能分子固体的合成与设计。软分子晶体的力学性能意味着固体内部的分子运动;性能类型取决于这种运动相对于所施加应力的可能性,包括分子在应力消除后恢复到其原始位置的能力。因此,人们关注诸如弹性、塑性和脆性等性能,这些性能与结构各向异性以及结构向各向同性特征转变的程度有关。然而,这些问题仍远未解决,且取决于具体体系。虽然所有分子固体可能都表现出弹性和脆性,但塑性窗口可能是最适合晶体工程策略和方法的一个。在所有这些方面,需要注意的是力学性能有一个动力学成分:在缓慢施加应力下具有弹性的晶体,如果快速施加相同应力,可能会变成塑性或脆性。在这种情况下,纳米压痕研究已证明自身在理解结构各向异性方面具有极其重要的意义。固态化学中的几个问题,包括经典问题,如脂肪族直链二羧酸的熔点交替和固溶体中的硬度调制,通过这项技术得到了更清晰的理解。甚至可能为皮米压痕研究和分子水平运动的观察开辟道路。与所有类型的晶体工程一样,对分子间相互作用的理解可导致面向性能的晶体设计,我们给出了在有机晶体中可有意开启或关闭复杂性能的示例:人们通过调节诸如氢键、卤键、π···π相互作用和C-H···π相互作用等相互作用,基本上微调各向同性/各向异性的程度。正如该领域几个研究小组的活动所证明的那样,该领域现在前景广阔。它将朝着智能材料、软晶体和超弹性以及对固态反应性的全面理解等领域发展。

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