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Nanograded artificial nacre with efficient energy dissipation

The renowned mechanical performance of biological ceramics can be attributed to their hierarchical structures, wherein structural features at the nanoscale play a crucial role. However, nanoscale features, such as nanogradients, have rarely been incorporated in biomimetic ceramics because of the cha...

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Autores principales: Meng, Yu-Feng, Yu, Cheng-Xin, Zhou, Li-Chuan, Shang, Li-Mei, Yang, Bo, Wang, Qing-Yue, Meng, Xiang-Sen, Mao, Li-Bo, Yu, Shu-Hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10514212/
https://www.ncbi.nlm.nih.gov/pubmed/37744177
http://dx.doi.org/10.1016/j.xinn.2023.100505
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author Meng, Yu-Feng
Yu, Cheng-Xin
Zhou, Li-Chuan
Shang, Li-Mei
Yang, Bo
Wang, Qing-Yue
Meng, Xiang-Sen
Mao, Li-Bo
Yu, Shu-Hong
author_facet Meng, Yu-Feng
Yu, Cheng-Xin
Zhou, Li-Chuan
Shang, Li-Mei
Yang, Bo
Wang, Qing-Yue
Meng, Xiang-Sen
Mao, Li-Bo
Yu, Shu-Hong
author_sort Meng, Yu-Feng
collection PubMed
description The renowned mechanical performance of biological ceramics can be attributed to their hierarchical structures, wherein structural features at the nanoscale play a crucial role. However, nanoscale features, such as nanogradients, have rarely been incorporated in biomimetic ceramics because of the challenges in simultaneously controlling the material structure at multiple length scales. Here, we report the fabrication of artificial nacre with graphene oxide nanogradients in its aragonite platelets through a matrix-directed mineralization method. The gradients are formed via the spontaneous accumulation of graphene oxide nanosheets on the surface of the platelets during the mineralization process, which then induces a lateral residual stress field in the platelets. Nanoindentation tests and mercury intrusion porosimetry demonstrate that the material’s energy dissipation is enhanced both intrinsically and extrinsically through the compressive stress near the platelet surface. The energy dissipation density reaches 0.159 ± 0.007 nJ/μm(3), and the toughness amplification is superior to that of the most advanced ceramics. Numerical simulations also agree with the finding that the stress field notably contributes to the overall energy dissipation. This work demonstrates that the energy dissipation of biomimetic ceramics can be further increased by integrating design principles spanning multiple scales. This strategy can be readily extended to the combinations of other structural models for the design and fabrication of structural ceramics with customized and optimized performance.
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spelling pubmed-105142122023-09-23 Nanograded artificial nacre with efficient energy dissipation Meng, Yu-Feng Yu, Cheng-Xin Zhou, Li-Chuan Shang, Li-Mei Yang, Bo Wang, Qing-Yue Meng, Xiang-Sen Mao, Li-Bo Yu, Shu-Hong Innovation (Camb) Report The renowned mechanical performance of biological ceramics can be attributed to their hierarchical structures, wherein structural features at the nanoscale play a crucial role. However, nanoscale features, such as nanogradients, have rarely been incorporated in biomimetic ceramics because of the challenges in simultaneously controlling the material structure at multiple length scales. Here, we report the fabrication of artificial nacre with graphene oxide nanogradients in its aragonite platelets through a matrix-directed mineralization method. The gradients are formed via the spontaneous accumulation of graphene oxide nanosheets on the surface of the platelets during the mineralization process, which then induces a lateral residual stress field in the platelets. Nanoindentation tests and mercury intrusion porosimetry demonstrate that the material’s energy dissipation is enhanced both intrinsically and extrinsically through the compressive stress near the platelet surface. The energy dissipation density reaches 0.159 ± 0.007 nJ/μm(3), and the toughness amplification is superior to that of the most advanced ceramics. Numerical simulations also agree with the finding that the stress field notably contributes to the overall energy dissipation. This work demonstrates that the energy dissipation of biomimetic ceramics can be further increased by integrating design principles spanning multiple scales. This strategy can be readily extended to the combinations of other structural models for the design and fabrication of structural ceramics with customized and optimized performance. Elsevier 2023-08-30 /pmc/articles/PMC10514212/ /pubmed/37744177 http://dx.doi.org/10.1016/j.xinn.2023.100505 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Report
Meng, Yu-Feng
Yu, Cheng-Xin
Zhou, Li-Chuan
Shang, Li-Mei
Yang, Bo
Wang, Qing-Yue
Meng, Xiang-Sen
Mao, Li-Bo
Yu, Shu-Hong
Nanograded artificial nacre with efficient energy dissipation
title Nanograded artificial nacre with efficient energy dissipation
title_full Nanograded artificial nacre with efficient energy dissipation
title_fullStr Nanograded artificial nacre with efficient energy dissipation
title_full_unstemmed Nanograded artificial nacre with efficient energy dissipation
title_short Nanograded artificial nacre with efficient energy dissipation
title_sort nanograded artificial nacre with efficient energy dissipation
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10514212/
https://www.ncbi.nlm.nih.gov/pubmed/37744177
http://dx.doi.org/10.1016/j.xinn.2023.100505
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