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dc.contributor.author Castillo-Castro, Daniel
dc.contributor.author Correa, Felipe
dc.contributor.author Aparicio, Emiliano
dc.contributor.author Amigo, Nicolás
dc.contributor.author Prada, Alejandro
dc.contributor.author Figueroa, Juan
dc.contributor.author González, Rafael I.
dc.contributor.author Bringa, Eduardo
dc.contributor.author Valencia, Felipe J.
dc.date.accessioned 2024-09-26T00:38:31Z
dc.date.available 2024-09-26T00:38:31Z
dc.date.issued 2023-04
dc.identifier.issn 2079-4991
dc.identifier.uri https://repositorio.uss.cl/handle/uss/12934
dc.description Funding Information: This research was funded by FONDECYT grants #1190662, 11200038, 11180557, and Financiamiento Basal para Centros Científicos y Tecnológicos de Excelencia AFB 180001. EMB thanks support from ANPCyT grant PICTO-UUMM-2019-00048 and SIIP-UNCuyo grant 06/M008-T1, CONICET PIP2021-2023. JRN thanks the support of DICYT Project 041931BR. Funding Information: FV, and JRN thanks Concurso de Fomento a la Vinculación Internacional para Instituciones de Investigación FOVI220037FV thanks the support of the Interlineas initiative. Powered@NLHPC: this research was partially supported by the supercomputing infrastructure of the NLHPC (ECM-02). Publisher Copyright: © 2023 by the authors.
dc.description.abstract Nanoporous materials show a promising combination of mechanical properties in terms of their relative density; while there are numerous studies based on metallic nanoporous materials, here we focus on amorphous carbon with a bicontinuous nanoporous structure as an alternative to control the mechanical properties for the function of filament composition.Using atomistic simulations, we study the mechanical response of nanoporous amorphous carbon with 50% porosity, with sp (Formula presented.) content ranging from 10% to 50%. Our results show an unusually high strength between 10 and 20 GPa as a function of the (Formula presented.) content. We present an analytical analysis derived from the Gibson–Ashby model for porous solids, and from the He and Thorpe theory for covalent solids to describe Young’s modulus and yield strength scaling laws extremely well, revealing also that the high strength is mainly due to the presence of sp (Formula presented.) bonding. Alternatively, we also find two distinct fracture modes: for low (Formula presented.) samples, we observe a ductile-type behavior, while high (Formula presented.) leads to brittle-type behavior due to high high shear strain clusters driving the carbon bond breaking that finally promotes the filament fracture. All in all, nanoporous amorphous carbon with bicontinuous structure is presented as a lightweight material with a tunable elasto-plastic response in terms of porosity and sp (Formula presented.) bonding, resulting in a material with a broad range of possible combinations of mechanical properties. en
dc.language.iso eng
dc.relation.ispartof vol. 13 Issue: no. 8 Pages:
dc.source Nanomaterials
dc.title Nanoporous Amorphous Carbon with Exceptional Ultra-High Strength en
dc.type Artículo
dc.identifier.doi 10.3390/nano13081429
dc.publisher.department Facultad de Ingeniería, Arquitectura y Diseño


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