Mechanistic insights of evaporation-induced actuation in supramolecular crystals

被引:0
|
作者
Roxana Piotrowska
Travis Hesketh
Haozhen Wang
Alan R. G. Martin
Deborah Bowering
Chunqiu Zhang
Chunhua T. Hu
Scott A. McPhee
Tong Wang
Yaewon Park
Pulkit Singla
Thomas McGlone
Alastair Florence
Tell Tuttle
Rein V. Ulijn
Xi Chen
机构
[1] Advanced Science Research Center (ASRC) at the Graduate Center of the City University of New York,PhD Program in Chemistry
[2] The Graduate Center of the City University of New York,Department of Pure and Applied Chemistry
[3] University of Strathclyde,PhD Program in Physics
[4] The Graduate Center of the City University of New York,EPSRC Continuous Manufacturing and Crystallisation Future Research Hub c/o Strathclyde Institute of Pharmacy and Biomedical Sciences, Technology Innovation Centre
[5] University of Strathclyde,Department of Chemistry
[6] New York University,Department of Chemistry and Biochemistry
[7] Hunter College,Department of Chemical Engineering
[8] City University of New York,undefined
[9] The City College of New York,undefined
来源
Nature Materials | 2021年 / 20卷
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摘要
Water-responsive materials undergo reversible shape changes upon varying humidity levels. These mechanically robust yet flexible structures can exert substantial forces and hold promise as efficient actuators for energy harvesting, adaptive materials and soft robotics. Here we demonstrate that energy transfer during evaporation-induced actuation of nanoporous tripeptide crystals results from the strengthening of water hydrogen bonding that drives the contraction of the pores. The seamless integration of mobile and structurally bound water inside these pores with a supramolecular network that contains readily deformable aromatic domains translates dehydration-induced mechanical stresses through the crystal lattice, suggesting a general mechanism of efficient water-responsive actuation. The observed strengthening of water bonding complements the accepted understanding of capillary-force-induced reversible contraction for this class of materials. These minimalistic peptide crystals are much simpler in composition compared to natural water-responsive materials, and the insights provided here can be applied more generally for the design of high-energy molecular actuators.
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页码:403 / 409
页数:6
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