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Journal article

Non-destructive electrochemical graphene transfer from reusable thin-film catalysts

In Carbon 2015, Volume 85, pp. 397-405
From

Department of Micro- and Nanotechnology, Technical University of Denmark1

Nanointegration, Department of Micro- and Nanotechnology, Technical University of Denmark2

Center for Nanostructured Graphene, Centers, Technical University of Denmark3

Columbia University4

Department of Energy Conversion and Storage, Technical University of Denmark5

Proton conductors, Department of Energy Conversion and Storage, Technical University of Denmark6

AIXTRON7

Department of Photonics Engineering, Technical University of Denmark8

Teraherts Technologies and Biophotonics, Department of Photonics Engineering, Technical University of Denmark9

We demonstrate an electrochemical method - which we term oxidative decoupling transfer (ODT) - for transferring chemical vapor deposited graphene from physically deposited copper catalyst layers. This copper oxidation-based transfer technique is generally applicable to copper surfaces, and is particularly suitable where the copper is adhered to a substrate such as oxidized silicon.

Graphene devices produced via this technique demonstrate 30% higher mobility than similar devices produced by standard catalyst etching techniques. The transferred graphene films cover more than 94% of target substrates - up to 100 mm diameter films are demonstrated here - and exhibit a low Raman D:G peak ratio and a homogenous and continuous distribution of sheet conductance mapped by THz time-domain spectroscopy.

By applying a fixed potential of -0.4 V vs. an Ag/AgCl reference electrode - significantly below the threshold for hydrogen production by electrolysis of water - we avoid the formation of hydrogen bubbles at the graphene-copper interface, preventing delamination of thin sputtered catalyst layers from their supporting substrates.

We demonstrate the reuse of the same growth substrate for five growth and transfer cycles and prove that this number is limited by the evaporation of Cu during growth of graphene. This technique therefore enables the repeated use of the highest crystallinity and purity substrates without undue increase in cost. (C) 2015 Elsevier Ltd.

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Language: English
Year: 2015
Pages: 397-405
ISSN: 18733891 and 00086223
Types: Journal article
DOI: 10.1016/j.carbon.2014.12.061
ORCIDs: Whelan, Patrick Rebsdorf , Petrushina, Irina , Jepsen, Peter Uhd , Bøggild, Peter and Booth, Tim

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