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

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TLDR
This Account describes efforts at focusing down into mechanical properties of organic molecular crystals from the viewpoint of crystal engineering, which is the synthesis and design of functional molecular solids and presents examples where complex properties may be deliberately turned on or off in organic crystals.
Abstract
ConspectusMechanical 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...

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Citations
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Retraction Note: Mechanically interlocked architecture aids an ultra-stiff and ultra-hard elastically bendable cocrystal.

TL;DR: In this article, the authors reported an organic elastically bendable co-crystal with stiffness comparable to low-density metals, hardness similar to stainless steel and reveal the molecular mechanism which lead to these mechanical properties.
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Synthesis and characterization of a mononuclear zinc(II) Schiff base complex: on the importance of C–H⋯π interactions

TL;DR: In this paper, the structure of a zinc(II) complex has been confirmed by X-ray crystallography and the noncovalent interactions characterized using Hirshfeld surface analysis.
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Halogen⋯Halogen Interactions: Nature, Directionality and Applications.

TL;DR: In this paper , a review of the halogen-halogen interactions is presented, including motifs, interchangeability, and interchangeability between different halogens and other functional groups.
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Elastic Molecular Crystals: Their Deformation-induced Reversible Unit Cell Changes with Specific Poisson Effect

TL;DR: In this article , an approach for quantitatively measuring reversible structural changes in flexible organic crystals was proposed. But the method was limited to the case of a single donor-acceptor elastic organic crystal.
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Four Directional Twinning Deformation of an Anisotropic Molecular Single Crystal Based on Three Different Modes of Mechanical Twinning

TL;DR: The introduction of mechanical twinnability is one of the most useful strategies to enhance deformability of crystalline materials by giving them an ability of reversible deformation over the elastic lattice as mentioned in this paper.
References
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Journal ArticleDOI

Photodimerization in the solid state

TL;DR: In this article, a review of solid-state photochemistry can be found under four parallel headings: first, analysis of the topochemical postulate according to which the course of the solid state reaction and the stereochemistry of the photodimer (if any) can be predicted from the configuration and nearest-neighbour geometry of closest monomer molecules in the crystal lattice; secondly, the study of the lOCUS of the reaction, that is the dependence of the course or (dimerization, cis trans isomerization) on crystal texture (dislocation
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Isostructurality, Polymorphism and Mechanical Properties of Some Hexahalogenated Benzenes: The Nature of Halogen⋅⋅⋅Halogen Interactions

TL;DR: Both chemical and geometrical models need to be considered for X...X interactions in hexahalogenated benzenes, where nonspecificity of the weak interlayer interactions here is demonstrated by the structure of twinned crystals of these compounds.
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Mechanochemical preparation of co-crystals

TL;DR: The preparation of co-crystals via mechanochemistry combines the quest for clean and green processes with the investigation of multicomponent new materials, among the currently most fashionable systems in the crystal engineering field.
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Mechanochemistry: the varied applications of mechanical bond-breaking

TL;DR: In this paper, a wide range of practical applications of mechanochemistry are outlined with typical examples for ceramics, mechanical alloying, hydrogen storage, organic syntheses, waste remediation, leachings, surface plasmas, radical formation, explosives, nanotube formation, nanoparticles grafting, polymer technology, radical initiation, scratchless polishing, wear protection, lubrication, mechanochromism, nano-dissection, and many more.
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Elastic and bendable caffeine cocrystals: implications for the design of flexible organic materials.

TL;DR: A remarkably flexible, elastically bendable cocrystal solvate 1 is reported, formed from caffeine, 4-chloro-3-nitrobenzoic acid, and methanol in a 1:1:< 1 ratio (Figure 1).
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