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Remarkable Effects of an Electrodeposited Copper Skin on the Strength and the Electrical and Thermal Conductivities of Reduced Graphene Oxide-Printed Scaffolds

J.J. MoyanoInstituto de Cerámica y Vidrio, CSIC, Campus de Cantoblanco, 28049 Madrid, SpainI. Garcı́aCentro Nacional de Investigaciones Metalúrgicas CENIM-CSIC, Av. Gregorio del Amo 8, 28040 Madrid, SpainJ. de DamboreneaCentro Nacional de Investigaciones Metalúrgicas CENIM-CSIC, Av. Gregorio del Amo 8, 28040 Madrid, SpainDomingo Pérez-CollInstituto de Cerámica y Vidrio, CSIC, Campus de Cantoblanco, 28049 Madrid, SpainManuel BelmonteInstituto de Cerámica y Vidrio, CSIC, Campus de Cantoblanco, 28049 Madrid, SpainP. MiranzoInstituto de Cerámica y Vidrio, CSIC, Campus de Cantoblanco, 28049 Madrid, SpainM.I. OsendiInstituto de Cerámica y Vidrio, CSIC, Campus de Cantoblanco, 28049 Madrid, Spain
2020en
ABI

Annotatsiya

Architected Cu/reduced graphene oxide (rGO) heterostructures are achieved by electrodepositing copper on filament-printed rGO scaffolds. The Cu coating perfectly contours the printed rGO structure, but isolated Cu particles also permeate inside the filaments. Although the Cu deposition conveys a certain mass augment, the three-dimensional (3D) structures remain reasonably light (bulk density ≅ 0.42 g·cm–3). The electrical conductivity (σe) of the Cu/rGO structure (∼8 × 104 S·m–1) shows a notable increment compared to σe of the rGO structure (∼2 × 102 S·m–1). The effect on the scaffold robustness is also notable with an increase of the compressive strength by nearly 10 times (from 20 kPa of the rGO scaffold to 150 kPa of the Cu/rGO structure) and cyclability as well. The improved thermal conductivity of the Cu-coated scaffolds (∼4 times higher), in addition to the σe and strength improvements, suggests that 3D Cu/rGO structures could be suitable assemblies for integration into thermal dissipation systems, particularly as thermal interface materials, for compact electronic devices.

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