» Articles » PMID: 23535514

The Effect of Non-covalent Functionalization on the Thermal Conductance of Graphene/organic Interfaces

Overview
Journal Nanotechnology
Specialty Biotechnology
Date 2013 Mar 29
PMID 23535514
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

The intrinsic interfacial thermal resistance at graphene/organic interfaces, as a result of mismatches in the phonon vibrational spectra of the two materials, diminishes the overall heat transfer performance of graphene/organic nanocomposites. In this paper, we use molecular dynamics (MD) simulations to design alkyl-pyrene molecules that can non-covalently functionalize graphene surfaces in contact with a model organic phase composed of octane. The alkyl-pyrene molecules possess phonon-spectra features of both graphene and octane and, therefore, can serve as phonon-spectra linkers to bridge the vibrational mismatch at the graphene/octane interface. In support of this hypothesis, we find that the best linker candidate can enhance the out-of-plane graphene/organic interfacial thermal conductance by ~22%, attributed to its capability to compensate the low-frequency phonon mode of graphene. We also find that the length of the alkyl chain indirectly affects the interfacial thermal conductance through different orientations of these chains because they dictate the contribution of the out-of-plane high-frequency carbon-hydrogen bond vibrations to the overall phonon transport. This study advances our understanding of the less destructive non-covalent functionalization method and design principles of suitable linker molecules to enhance the thermal performance of graphene/organic nanocomposites while retaining the intrinsic chemical, thermal, and mechanical properties of pristine graphene.

Citing Articles

Effect of boundary chain folding on thermal conductivity of lamellar amorphous polyethylene.

Ouyang Y, Zhang Z, Xi Q, Jiang P, Ren W, Li N RSC Adv. 2022; 9(57):33549-33557.

PMID: 35529136 PMC: 9073277. DOI: 10.1039/c9ra07563a.


Enhanced thermal conductance at the graphene-water interface based on functionalized alkane chains.

Chen S, Yang M, Liu B, Xu M, Zhang T, Zhuang B RSC Adv. 2022; 9(8):4563-4570.

PMID: 35520161 PMC: 9060609. DOI: 10.1039/c8ra09879d.


Interfacial Modulation of Graphene by Polythiophene with Controlled Molecular Weight to Enhance Thermal Conductivity.

Li Y, Wang Y, Chen P, Xia R, Wu B, Qian J Membranes (Basel). 2021; 11(11).

PMID: 34832125 PMC: 8625024. DOI: 10.3390/membranes11110895.


Polar rotor scattering as atomic-level origin of low mobility and thermal conductivity of perovskite CHNHPbI.

Li B, Kawakita Y, Liu Y, Wang M, Matsuura M, Shibata K Nat Commun. 2017; 8:16086.

PMID: 28665407 PMC: 5497077. DOI: 10.1038/ncomms16086.


Review of Recent Developments on Using an Off-Lattice Monte Carlo Approach to Predict the Effective Thermal Conductivity of Composite Systems with Complex Structures.

Gong F, Duong H, Papavassiliou D Nanomaterials (Basel). 2017; 6(8).

PMID: 28335270 PMC: 5224620. DOI: 10.3390/nano6080142.