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May 3, 20260 citations

Polymer-Free Gradient-Etching Transfer of Freestanding Monolayer Graphene.

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GFGu FengXLXiao-Long LvYPYang Peng-ju

Key Points

  • The aim is to develop a polymer-free method for transferring freestanding monolayer graphene using gradient etching techniques.
  • Utilized gradient etching strategy with unidirectional copper substrate etching.
  • Employed electrochemically assisted etching and flow-assisted etching techniques for enhanced corrosion.
  • Fabricated freestanding graphene for use as a transparent electrode with tailored properties.
  • Successfully created centimeter-scale, substrate-free monolayer graphene without tearing or fragmentation.
  • Freestanding graphene demonstrated suitable properties for spectroscopic studies of the carbon-water interface.
  • Enabled in situ electrochemical deposition of catalyst nanoparticles to enhance its electrical and catalytic properties.

Abstract

A polymer-free graphene transfer method based on a gradient-etching strategy is reported, allowing the fabrication of centimeter-scale, substrate-free monolayer graphene. Through unidirectional etching of the Cu substrate, the graphene layer is progressively released to float freely on the liquid surface, thereby eliminating tearing and fragmentation arising from random copper dissolution in conventional isotropic etching. The gradient etching can be realized through either electrochemically assisted etching, where the enhanced edge field near the counter electrode accelerates the local corrosion, or flow-assisted etching, where fluid motion promotes faster mass transport at the advancing reaction front. The resulting freestanding graphene serves as a transparent, gate-tunable electrode, ideally suited for spectroscopic studies of the intrinsic carbon-water interface. Its electrical and catalytic properties can be further tailored via in situ electrochemical deposition of catalyst nanoparticles. This method offers a highly flexible and versatile experimental platform for both fundamental investigations and high-performance device fabrication based on cleanly transferred graphene.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/69f6e5cf8071d4f1bdfc673chttps://doi.org/10.1021/acsami.6c04292
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