Nanoporous Amorphous Carbon with Exceptional Ultra-High Strength

Author:

Castillo-Castro Daniel1ORCID,Correa Felipe2,Aparicio Emiliano3,Amigo Nicolás4ORCID,Prada Alejandro5,Figueroa Juan5ORCID,González Rafael I.16,Bringa Eduardo3ORCID,Valencia Felipe J.56

Affiliation:

1. Centro de Nanotecnología Aplicada, Facultad de Ciencias, Universidad Mayor, Santiago 7500994, Chile

2. Escuela de Ingeniería en Computación e Informatica, Facultad de Ciencias, Universidad Mayor, Santiago 7500994, Chile

3. CONICET and Universidad de Mendoza, Mendoza 5500, Argentina

4. Facultad de Ingeniería, Arquitectura y Diseño, Universidad San Sebastián, Bellavista 7, Santiago 8420524, Chile

5. Departamento de Computación e Industrias, Facultad de Ciencias de la Ingeniería, Universidad Católica del Maule, Talca 3480112, Chile

6. Centro Para el Desarrollo de la Nanociencia y Nanotectonolgía, CEDENNA, Estación Centtral 917022, Chile

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 sp3 content ranging from 10% to 50%. Our results show an unusually high strength between 10 and 20 GPa as a function of the %sp3 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 sp3 bonding. Alternatively, we also find two distinct fracture modes: for low %sp3 samples, we observe a ductile-type behavior, while high %sp3 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 sp3 bonding, resulting in a material with a broad range of possible combinations of mechanical properties.

Funder

FONDECYT

Financiamiento Basal para Centros Científicos y Tecnológicos de Excelencia AFB

ANPCyT

SIIP-UNCuyo

CONICET

DICYT

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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