<?xml version="1.1" encoding="utf-8"?>
<article xsi:noNamespaceSchemaLocation="http://jats.nlm.nih.gov/publishing/1.1/xsd/JATS-journalpublishing1-mathml3.xsd" dtd-version="1.1" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"><front><journal-meta><journal-id journal-id-type="publisher-id">JERA</journal-id><journal-title-group><journal-title>Journal of Electronic Research and Application</journal-title></journal-title-group><issn>2208-3502</issn><eissn>2208-3510</eissn><publisher><publisher-name>Bio-Byword Scientific Publishing Pty. Ltd.</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.26689/JERA.v10i8.15205</article-id><article-categories><subj-group subj-group-type="heading"><subject>Article</subject></subj-group></article-categories><title>Electrochemical Oxidation Dispersion of Graphene and Improvement of Its Compatibility with Coating Matrices</title><url>https://artdesignp.com/journal/JERA/10/8/10.26689/JERA.v10i8.15205</url><author>ZhangQian,YuanKaijie,DengManjiao,WuHailin</author><pub-date pub-type="publication-year"><year>2026</year></pub-date><volume>10</volume><issue>8</issue><history><date date-type="pub"><published-time>2026-09-03</published-time></date></history><abstract>The research employs a mild, controllable, and efficient electrochemical oxidation process using high-quality monolayer graphene powder prepared by a liquid-phase thermochemical route as the starting material. By optimizing key parameters including applied voltage and electrolyte concentration, a small number of hydrophilic oxygen-containing functional groups were selectively introduced at the edges of graphene, yielding a stably dispersed aqueous solution. The optimal conditions were determined as: graphene sheet anode, copper cathode, 0.4 mol/L NaOH electrolyte, voltage 8 V, and treatment time 30 min. Raman spectroscopy revealed an ID/IG ratio of 0.42. Thermogravimetric analysis and X-ray photoelectron spectroscopy confirmed that the oxygen content of electrochemically oxidized graphene (EGO) is low and that oxygen species are predominantly located at the edges; after reduction, the oxygen signals completely vanished, whereas residual oxygen remained in reduced GO. The as-prepared EGO aqueous dispersion achieved a concentration of 0.66 mg/mL and remained stable over six months of storage. TEM and AFM verified that the product retains a monolayer structure with an intact lattice. This approach preserves the intrinsic structure of graphene to the greatest extent while ensuring satisfactory dispersibility, thus offering a feasible pathway for fabricating high-performance graphene/siloxane ceramic resins and heavy-duty anti-corrosion coatings.</abstract><keywords>Graphene, Electrochemical oxidation, Dispersion stability, Edge oxidation, Coating compatibility</keywords></article-meta></front><body/><back><ref-list><ref id="B1" content-type="article"><label>1</label><element-citation publication-type="journal"><p>[1] Geim A, Novoselov K, 2007, The Rise of Graphene. Nature Materials, 6(3): 183&amp;ndash;191.
[2] Guo X, Qing F, Li X, 2021, Applications of Graphene in Anti-Corrosion of Metal Surface. Acta Physica Sinica, 70(9): 098102.
[3] Zhang Y, Sun J, Xiao X, et al., 2022, Graphene-Like Two-Dimensional Nanosheets-Based Anticorrosive Coatings: A Review. Journal of Materials Science &amp;amp; Technology, 129: 139&amp;ndash;162.
[4] Wang P, Cai D, 2020, Preparation of Graphene-Modified Anticorrosion Coating and Study on Its Corrosion Resistance Mechanism. International Journal of Photoenergy, 2020: 1&amp;ndash;9.
[5] Daradmare S, Raj S, Bhattacharyya A, et al., 2018, Factors Affecting Barrier Performance of Composite Anti-Corrosion Coatings Prepared by Using Electrochemically Exfoliated Few-Layer Graphene as Filler. Composites Part B, 155: 1&amp;ndash;10.
[6] Li T, Zhan H, Lan H, et al., 2023, Graphene Oxide Modification and Its Application in Anticorrosive Epoxy Coatings. Journal of Chemical Engineering of Chinese Universities, 37(4): 525&amp;ndash;536.
[7] Wang B, Cunning B, Ruo R, et al., 2016, Graphene Coatings as Barrier Layers to Prevent the Water-Induced Corrosion of Silicate Glass. ACS Nano, 10(11): 9794&amp;ndash;9800.
[8] Yue X, Zhang X, Qiao Y, et al., 2025, A Review on Properties of Graphene Modified Thermosetting Resin Matrix Composites. Materials Reports, 39(9): 240401771&amp;ndash;9.
[9] Govindaraj P, Sokolova A, Salim N, et al., 2021, Distribution States of Graphene in Polymer Nanocomposites: A Review. Composites Part B: Engineering, 226: 109353.
[10] Georgakilas V, Tiwari J, Kemp K, et al., 2016, Noncovalent Functionalization of Graphene and Graphene Oxide for Energy Materials, Biosensing, Catalytic, and Biomedical Applications. Chemical Reviews, 116(9): 5464&amp;ndash;5519.
[11] Qamar S, Ramzan N, Aleem W, 2024, Graphene Dispersion, Functionalization Techniques and Applications: A Review. Synthetic Metals, 307: 117697.
[12] Pei S, Wei Q, Huang K, et al., 2018, Green Synthesis of Graphene Oxide by Seconds Timescale Water Electrolytic Oxidation. Nature Communications, 9: 145.
[13] Yang S, Lohe M, Mullen K, et al., 2016, New-Generation Graphene From Electrochemical Approaches: Production and Applications. Advanced Materials, 28(29): 6213&amp;ndash;6221.
[14] Hao S, Hou S, Liu Y, et al., 2025, Enhanced Anticorrosion of Waterborne Epoxy Coatings by Electrochemical Exfoliated Graphene Oxide. Progress in Organic Coatings, 202: 109147</p><pub-id pub-id-type="doi"/></element-citation></ref></ref-list></back></article>
