4.8 Article

Spatial Precision Tailoring the Catalytic Activity of Graphene Monolayers for Designing Janus Swimmers

Journal

NANO LETTERS
Volume 23, Issue 17, Pages 8180-8185

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.3c02314

Keywords

monolayer graphene; bipolar electrochemistry; 2D swimmers; Janus particles

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Graphene monolayers can be postmodified with high precision by highly site-selective functionalization with platinum (Pt) clusters, resulting in catalytically active two-dimensional nanomaterials. The type and speed of motion of these materials can be controlled by controlling the deposition time and location of the Pt clusters.
Graphene monolayers have interesting applications in many fields due to their intrinsic physicochemical properties, especially when they can be postmodified with high precision. Herein, we describe the highly site-selective functionalization of freestanding graphene monolayers with platinum (Pt) clusters by bipolar electrochemistry. The deposition of such metal spots leads to catalytically active hybrid two-dimensional (2D) nanomaterials. Their catalytic functionality is illustrated by the spatially controlled decomposition of hydrogen peroxide, inducing motion at the water/air interface due to oxygen bubble evolution. A series of such 2D Janus structures with Pt deposition at predefined positions (corners and edges) is studied with respect to the generation of autonomous motion. The type and speed of motion can be fine-tuned by controlling the deposition time and location of the Pt clusters. These proof-of-principle experiments indicate that this type of hybrid 2D object opens up interesting perspectives in terms of applications, such as environmental detection or remediation.

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