Structure-mediated thermal transport of monolayer graphene allotropes nanoribbons


Autoria(s): Zhan, Haifei; Zhang, Yingyan; Bell, John M.; Mai, Yiu-Wing; Gu, YuanTong
Data(s)

24/10/2014

Resumo

We report the study of the thermal transport management of monolayer graphene allotrope nanoribbons (size ∼20 × 4 nm2) by the modulation of their structures via molecular dynamics simulations. The thermal conductivity of graphyne (GY)-like geometries is observed to decrease monotonously with increasing number of acetylenic linkages between adjacent hexagons. Strikingly, by incorporating those GY or GY-like structures, the thermal performance of graphene can be effectively engineered. The resulting hetero-junctions possess a sharp local temperature jump at the interface, and show a much lower effective thermal conductivity due to the enhanced phonon–phonon scattering. More importantly, by controlling the percentage, type and distribution pattern of the GY or GY-like structures, the hetero-junctions are found to exhibit tunable thermal transport properties (including the effective thermal conductivity, interfacial thermal resistance and rectification). This study provides a heuristic guideline to manipulate the thermal properties of 2D carbon networks, ideal for application in thermoelectric devices with strongly suppressed thermal conductivity.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/74372/

Publicador

Elsevier

Relação

http://eprints.qut.edu.au/74372/1/accepted_version.pdf

DOI:10.1016/j.carbon.2014.05.045

Zhan, Haifei, Zhang, Yingyan, Bell, John M., Mai, Yiu-Wing, & Gu, YuanTong (2014) Structure-mediated thermal transport of monolayer graphene allotropes nanoribbons. Carbon, 77, pp. 416-423.

http://purl.org/au-research/grants/ARC/DP130102120

Direitos

Copyright 2014 Elsevier

This is the author’s version of a work that was accepted for publication in Carbon. Changes resulting from the publishing process, such as peer review, editing, corrections, structural formatting, and other quality control mechanisms may not be reflected in this document. Changes may have been made to this work since it was submitted for publication. A definitive version was subsequently published in Carbon, [VOL 77, (2014)] DOI: 10.1016/j.carbon.2014.05.045

Fonte

School of Chemistry, Physics & Mechanical Engineering; Faculty of Science and Technology

Palavras-Chave #091307 Numerical Modelling and Mechanical Characterisation #100708 Nanomaterials #100712 Nanoscale Characterisation #graphene #allotrope #thermal conductivity #interfacial thermal resistance #molecular dynamics simulation
Tipo

Journal Article