Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices
How materials behave when subjected to mechanical stresses is studied by mechanics of materials. However, the application of flexible and stretchable devices exposes materials to dynamic mechanical environments. Therefore, mechano-adaptable materials and devices that can respond as pre-designed have...
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sg-ntu-dr.10356-1381442023-07-14T15:48:06Z Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices Chen, Geng Cui, Yajing Chen, Xiaodong School of Materials Science & Engineering Innovative Centre for Flexible Devices Engineering::Materials Materials Mechanical stress How materials behave when subjected to mechanical stresses is studied by mechanics of materials. However, the application of flexible and stretchable devices exposes materials to dynamic mechanical environments. Therefore, mechano-adaptable materials and devices that can respond as pre-designed have been explored. There are two main ways to proactively modulate mechanical behaviors for materials, which involve molecular design and structural design. Molecular design has effectively integrated mechanically sensitive groups into synthetic materials for anticipated mechano-response. Structural design has broadened the boundary of conventional materials, generating mechanical metamaterials at multiscale with unique mechanical properties. Furthermore, molecular, structural plus systematic design for the application of mechano-adaptable devices have realized better electrical performance, human interaction, long-term sustainability, and even higher efficiency. Various devices based on design ideas are summarized and future challenges for proactively modulating mechanical behaviors of mechano-adaptable devices are discussed. © 2019 The Royal Society of Chemistry. NRF (Natl Research Foundation, S’pore) MOE (Min. of Education, S’pore) Accepted version 2020-04-27T01:42:53Z 2020-04-27T01:42:53Z 2018 Journal Article Chen, G., Cui, Y., & Chen, X. (2019). Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices. Chemical Society Reviews, 48(6), 1434-1447. doi:10.1039/C8CS00801A 0306-0012 https://hdl.handle.net/10356/138144 10.1039/C8CS00801A 6 48 1434 1447 en Chemical Society Reviews © 2019 The Royal Society of Chemistry. All rights reserved. This paper was published in Chemical Society Reviews and is made available with permission of The Royal Society of Chemistry. application/pdf |
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Engineering::Materials Materials Mechanical stress Chen, Geng Cui, Yajing Chen, Xiaodong Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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How materials behave when subjected to mechanical stresses is studied by mechanics of materials. However, the application of flexible and stretchable devices exposes materials to dynamic mechanical environments. Therefore, mechano-adaptable materials and devices that can respond as pre-designed have been explored. There are two main ways to proactively modulate mechanical behaviors for materials, which involve molecular design and structural design. Molecular design has effectively integrated mechanically sensitive groups into synthetic materials for anticipated mechano-response. Structural design has broadened the boundary of conventional materials, generating mechanical metamaterials at multiscale with unique mechanical properties. Furthermore, molecular, structural plus systematic design for the application of mechano-adaptable devices have realized better electrical performance, human interaction, long-term sustainability, and even higher efficiency. Various devices based on design ideas are summarized and future challenges for proactively modulating mechanical behaviors of mechano-adaptable devices are discussed. © 2019 The Royal Society of Chemistry. |
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School of Materials Science & Engineering |
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School of Materials Science & Engineering Chen, Geng Cui, Yajing Chen, Xiaodong |
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Chen, Geng Cui, Yajing Chen, Xiaodong |
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Chen, Geng |
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Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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Proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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proactively modulating mechanical behaviors of materials at multiscale for mechano-adaptable devices |
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2020 |
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https://hdl.handle.net/10356/138144 |
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