MRS Meetings and Events

 

MF02.05.05 2024 MRS Spring Meeting

Quick and Reversible Superwettability Switching of 3D Graphene Foams via Solvent-Exclusive Microwave Arcs

When and Where

Apr 24, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Soomin Cheon1,Won-Jang Cho1,Gi-Ra Yi1,Byoungwoo Kang1,Seung Soo Oh1

Pohang University of Science and Technology1

Abstract

Soomin Cheon1,Won-Jang Cho1,Gi-Ra Yi1,Byoungwoo Kang1,Seung Soo Oh1

Pohang University of Science and Technology1
For highly active electron transfer and ion diffusion, electrically and thermally conductive 3D graphene foams (3D GFs) heavily rely on precise control of their surface wettability with respect to different polarities of fluids. For their practical applications, either hydrophilic or hydrophobic 3D GFs are prepared in advance; even though there have been many different ways of controlling their surface wettability, such as solvent treatment, heteroatom doping, ultraviolet or laser irradiation, and plasma treatment, they are time-consuming and even high-cost processes, limiting them to be only applicable for 2D graphene or powders. Here, we present ultra-simple and rapid superwettability switching of 3D GFs in a reversible and reproducible manner, as mediated by solvent-exclusive microwave arcs. As the 3D GFs are pre-coated with vaporized solvents exclusively, short microwave radiation (≤10 s) leads to plasma hotspot-mediated production of polar or nonpolar radicals. Upon immediate radical chemisorption, the 3D surfaces become either superhydrophobic (water contact angle = ~170°) or superhydrophilic (~0°), and interestingly, the dramatic wettability transition can be repeated many times due to the facile exchange between previously chemisorbed and newly introduced radicals<i>.</i> Our microwave-mediated, quick and reversible wettability switching would be applicable for many different applications (e.g., energy storage, sensing, microfluidic transportation, and water-oil separation). Importantly, our superwettability switching is applicable for all kinds of carbon-based nanomaterials, including 2D graphene and carbon nanotubes.

Keywords

C | microwave heating | surface reaction

Symposium Organizers

Antje Baeumner, Universität Regensburg
Jonathan Claussen, Iowa State University
Varun Kashyap, Medtronic
Rahim Rahimi, Purdue University

Session Chairs

Varun Kashyap
Rahim Rahimi

In this Session

MF02.05.01
Laser Reactive Sintering of Complex Oxides

MF02.05.02
Pyrolytic Jetting of Free-Standing Laser-Induced Graphene Fiber for Cost-Effective Supercapacitor

MF02.05.03
Direct-Laser Scribing of Electrodes Using Metal-Organic Frameworks for Electrochemical Detection

MF02.05.04
Electrochemical CO2 Reduction to HCOOH Catalyzed by Agn(NO3)n+1 Clusters prepared by Laser Ablation at The Air-Liquid Interface

MF02.05.05
Quick and Reversible Superwettability Switching of 3D Graphene Foams via Solvent-Exclusive Microwave Arcs

MF02.05.07
Arbitrary Three-Dimensional Alignment of Liquid Crystal Molecules via Laser Direct Writing

MF02.05.08
Direct Patterning of Tungsten Oxide Nanoparticles via Laser Ablation Process for a Digital Informative Display

MF02.05.09
Laser-Induced Graphitic Electrodes as Rapid Fabrication of Thin-Film Implantable Multielectrode Arrays

MF02.05.10
In-Field Monitoring of Plant Stress with a Low-Cost Electrochemical Sensor

MF02.05.11
A Nafion-Modified Laser-Induced Graphene Sensor for Spontaneous Monitoring of Caffeine and Vanillin

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