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The Many Flavours of Mechanochemistry and Its Plausible Conceptual Underpinnings

Overview
Journal Nat Rev Chem
Publisher Springer Nature
Specialty Chemistry
Date 2023 Apr 28
PMID 37117533
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Abstract

Mechanochemistry describes diverse phenomena in which mechanical load affects chemical reactivity. The fuzziness of this definition means that it includes processes as seemingly disparate as motor protein function, organic synthesis in a ball mill, reactions at a propagating crack, chemical actuation, and polymer fragmentation in fast solvent flows and in mastication. In chemistry, the rate of a reaction in a flask does not depend on how fast the flask moves in space. In mechanochemistry, the rate at which a material is deformed affects which and how many bonds break. In other words, in some manifestations of mechanochemistry, macroscopic motion powers otherwise endergonic reactions. In others, spontaneous chemical reactions drive mechanical motion. Neither requires thermal or electrostatic gradients. Distinct manifestations of mechanochemistry are conventionally treated as being conceptually independent, which slows the field in its transformation from being a collection of observations to a rigorous discipline. In this Review, we highlight observations suggesting that the unifying feature of mechanochemical phenomena may be the coupling between inertial motion at the microscale to macroscale and changes in chemical bonding enabled by transient build-up and relaxation of strains, from macroscopic to molecular. This dynamic coupling across multiple length scales and timescales also greatly complicates the conceptual understanding of mechanochemistry.

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References
1.
Boldyreva E . Mechanochemistry of inorganic and organic systems: what is similar, what is different?. Chem Soc Rev. 2013; 42(18):7719-38. DOI: 10.1039/c3cs60052a. View

2.
Balaz P, Achimovicova M, Balaz M, Billik P, Cherkezova-Zheleva Z, Criado J . Hallmarks of mechanochemistry: from nanoparticles to technology. Chem Soc Rev. 2013; 42(18):7571-637. DOI: 10.1039/c3cs35468g. View

3.
Cross R, McAinsh A . Prime movers: the mechanochemistry of mitotic kinesins. Nat Rev Mol Cell Biol. 2014; 15(4):257-71. DOI: 10.1038/nrm3768. View

4.
Cross R . Review: Mechanochemistry of the kinesin-1 ATPase. Biopolymers. 2016; 105(8):476-82. PMC: 4924600. DOI: 10.1002/bip.22862. View

5.
Hancock W . The Kinesin-1 Chemomechanical Cycle: Stepping Toward a Consensus. Biophys J. 2016; 110(6):1216-25. PMC: 4816755. DOI: 10.1016/j.bpj.2016.02.025. View