» Articles » PMID: 23480816

Review of Chemical Vapor Deposition of Graphene and Related Applications

Overview
Journal Acc Chem Res
Specialty Chemistry
Date 2013 Mar 14
PMID 23480816
Citations 148
Authors
Affiliations
Soon will be listed here.
Abstract

Since its debut in 2004, graphene has attracted enormous interest because of its unique properties. Chemical vapor deposition (CVD) has emerged as an important method for the preparation and production of graphene for various applications since the method was first reported in 2008/2009. In this Account, we review graphene CVD on various metal substrates with an emphasis on Ni and Cu. In addition, we discuss important and representative applications of graphene formed by CVD, including as flexible transparent conductors for organic photovoltaic cells and in field effect transistors. Growth on polycrystalline Ni films leads to both monolayer and few-layer graphene with multiple layers because of the grain boundaries on Ni films. We can greatly increase the percentage of monolayer graphene by using single-crystalline Ni(111) substrates, which have smooth surface and no grain boundaries. Due to the extremely low solubility of carbon in Cu, Cu has emerged as an even better catalyst for the growth of monolayer graphene with a high percentage of single layers. The growth of graphene on Cu is a surface reaction. As a result, only one layer of graphene can form on a Cu surface, in contrast with Ni, where more than one layer can form through carbon segregation and precipitation. We also describe a method for transferring graphene sheets from the metal using polymethyl methacrylate (PMMA). CVD graphene has electronic properties that are potentially valuable in a number of applications. For example, few-layer graphene grown on Ni can function as flexible transparent conductive electrodes for organic photovoltaic cells. In addition, because we can synthesize large-grain graphene on Cu foil, such large-grain graphene has electronic properties suitable for use in field effect transistors.

Citing Articles

Rapid and Efficient Polymer/Contaminant Removal from Single-Layer Graphene via Aqueous Sodium Nitrite Rinsing for Enhanced Electronic Applications.

Lee K, Kil J, Park J, Yang S, Park B Polymers (Basel). 2025; 17(5).

PMID: 40076181 PMC: 11902524. DOI: 10.3390/polym17050689.


Advanced fabrication techniques for polymer-metal nanocomposite films: state-of-the-art innovations in energy and electronic applications.

Tayyab M, Zizhe L, Rauf S, Xu Z, Sagar R, Faiz F Chem Sci. 2025; 16(8):3362-3407.

PMID: 39906390 PMC: 11789674. DOI: 10.1039/d4sc04600e.


Copper Oxidation-Induced Nanoscale Deformation of Electromechanical, Laminate Polymer/Graphene Thin Films during Thermal Annealing: Implications for Flexible, Transparent, and Conductive Electrodes.

Croft Z, Valenzuela O, Thompson C, Whitfield B, Betzko G, Liu G ACS Appl Nano Mater. 2025; 7(24):28829-28840.

PMID: 39744150 PMC: 11686465. DOI: 10.1021/acsanm.4c06372.


Liquid Phase Exfoliation of 2D Materials and Its Electrochemical Applications in the Data-Driven Future.

Chavalekvirat P, Hirunpinyopas W, Deshsorn K, Jitapunkul K, Iamprasertkun P Precis Chem. 2024; 2(7):300-329.

PMID: 39473901 PMC: 11504616. DOI: 10.1021/prechem.3c00119.


Influence of Synthesis Parameters on Structure and Characteristics of the Graphene Grown Using PECVD on Sapphire Substrate.

Jankauskas S, Meskinis S, Zurauskiene N, Guobiene A Nanomaterials (Basel). 2024; 14(20).

PMID: 39452971 PMC: 11509920. DOI: 10.3390/nano14201635.