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  5. Synthesis of Layer‐Tunable Graphene: A Combined Kinetic Implantation and Thermal Ejection Approach

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Article
en
2015

Synthesis of Layer‐Tunable Graphene: A Combined Kinetic Implantation and Thermal Ejection Approach

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0 Files

en
2015
Vol 25 (24)
Vol. 25
DOI: 10.1002/adfm.201500981

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Paul Kim Ho Chu
Paul Kim Ho Chu

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Gang Wang
Miao Zhang
Su Liu
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Abstract

Layer‐tunable graphene has attracted broad interest for its potentials in nanoelectronics applications. However, synthesis of layer‐tunable graphene by using traditional chemical vapor deposition method still remains a great challenge due to the complex experimental parameters and the carbon precipitation process. Herein, by performing ion implantation into a Ni/Cu bilayer substrate, the number of graphene layers, especially single or double layer, can be controlled precisely by adjusting the carbon ion implant fluence. The growth mechanism of the layer‐tunable graphene is revealed by monitoring the growth process, it is observed that the entire implanted carbon atoms can be expelled toward the substrate surface and thus graphene with designed layer number can be obtained. Such a growth mechanism is further confirmed by theoretical calculations. The proposed approach for the synthesis of layer‐tunable graphene offers more flexibility in the experimental conditions. Being a core technology in microelectronics processing, ion implantation can be readily implemented in production lines and is expected to expedite the application of graphene to nanoelectronics.

How to cite this publication

Gang Wang, Miao Zhang, Su Liu, Xiaoming Xie, Guqiao Ding, Yongqiang Wang, Paul Kim Ho Chu, Heng Gao, Wei Ren, Qinghong Yuan, Peihong Zhang, Xi Wang, Zengfeng Di (2015). Synthesis of Layer‐Tunable Graphene: A Combined Kinetic Implantation and Thermal Ejection Approach. , 25(24), DOI: https://doi.org/10.1002/adfm.201500981.

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Publication Details

Type

Article

Year

2015

Authors

13

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1002/adfm.201500981

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