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中国腐蚀与防护学报  2026, Vol. 46 Issue (4): 1058-1066     CSTR: 32134.14.1005.4537.2025.293      DOI: 10.11902/1005.4537.2025.293
  研究报告 本期目录 | 过刊浏览 |
功能化MoS2 复合涂层的防腐抑菌性能研究
朱硕1, 李光昊1, 褚振华1(), 唐婉1, 蒋全通2(), 许竞翔1
1.上海海洋大学工程学院 上海 201306
2.中国科学院海洋研究所 海洋环境腐蚀与生物污损重点实验室 青岛 266404
Anticorrosive and Antibacterial Properties of Functionalized MoS2 Composite Coatings
ZHU Shuo1, LI Guanghao1, CHU Zhenhua1(), TANG Wan1, JIANG Quantong2(), XU Jingxiang1
1.College of Engineering, Shanghai Ocean University, Shanghai 201306, China
2.Key Laboratory of Corrosion and Biofouling in Marine Environment, Institute of Oceanography, Chinese Academy of Sciences, Qingdao 266404, China
引用本文:

朱硕, 李光昊, 褚振华, 唐婉, 蒋全通, 许竞翔. 功能化MoS2 复合涂层的防腐抑菌性能研究[J]. 中国腐蚀与防护学报, 2026, 46(4): 1058-1066.
Shuo ZHU, Guanghao LI, Zhenhua CHU, Wan TANG, Quantong JIANG, Jingxiang XU. Anticorrosive and Antibacterial Properties of Functionalized MoS2 Composite Coatings[J]. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1058-1066.

全文: PDF(13142 KB)   HTML
摘要: 

针对海洋环境中设备长期服役所面临的腐蚀与微生物污损双重威胁,本文设计并制备了一种功能化MoS2协同环氧基复合防护涂层。通过硅烷偶联剂(KH550)对MoS2进行表面功能化改性,使其在环氧改性有机硅乳液与丙烯酸树脂混合体系中实现均匀分散。系统研究了MoS2添加量对涂层形貌结构、电化学性能及对硫酸盐还原菌抑菌性能的影响。结果表明,5‰ (质量分数)改性MoS2添加显著提升了涂层致密性与均匀性,腐蚀电流密度降低至1.74 × 10-10 A/cm2,腐蚀速率降低至2.0167 × 10-6 mm/a,展现出最优耐蚀效果;同时,其对硫酸盐还原菌的抑菌效率达96.2%,通过破坏生物膜结构,实现持续抗菌作用。研究表明,功能化MoS2可在复合涂层中协同发挥屏障效应与抗菌活性,为高性能海洋防护材料的开发提供了理论基础和实践依据。

关键词 MoS2微生物腐蚀抑菌    
Abstract

To address the dual challenges of corrosion and microbial fouling faced by equipment during long-term service in the marine environment, a functionalized MoS2 synergistic epoxy-based composite protective coating was designed and prepared in this study. MoS2 was surface-functionalized with KH550 to achieve uniform dispersion within the mixed system of epoxy-modified silicone emulsion and acrylic resin. The effect of MoS2 loading on the coating's morphology, electrochemical performance, and antibacterial activity against sulfate-reducing bacteria (SRB) were systematically investigated. The results demonstrated that an optimal addition of 5‰ functionalized MoS2 significantly improved the coating's compactness and uniformity, reducing the corrosion current density to 1.74 × 10-10 A/cm2 and the corrosion rate to 2.0167 × 10-6 mm/a, thereby exhibiting the best corrosion resistance. Meanwhile, the coating achieved an SRB inhibition efficiency of 96.2% through biofilm disruption, which enable the coating sustainable antibacterial performance. These findings indicate that the functionalized MoS2 can synergistically exert barrier effect and antibacterial activity in composite coatings, providing both theoretical insights and practical guidance for the development of high-performance marine protective materials.

Key wordsmolybdenum disulfide    microbial corrosion    bacterial inhibition
收稿日期: 2025-09-16      32134.14.1005.4537.2025.293
ZTFLH:  TG174  
通讯作者: 褚振华,E-mail:zhchu@shou.edu.cn,研究方向为海洋材料腐蚀与防护蒋全通,E-mail:jiangquantong@qdio.ac.cn,研究方向为海洋腐蚀与防护
Corresponding author: CHU Zhenhua, E-mail: zhchu@shou.edu.cnJIANG Quantong, E-mail: jiangquantong@qdio.ac.cn
作者简介: 朱 硕,男,1997年生,硕士生
图1  改性前后MoS2 FTIR谱图
图2  不同含量MoS2涂层SEM表面显微形貌
图3  不同含量MoS2涂层的极化曲线图、Nyquist图和Bode图
SamplesEcorr / mVIcorr / A·cm-2Vcorr / mm·a-1
M0-2571.38 × 10-81.6061 × 10-4
M1-2522.08 × 10-92.4191 × 10-5
M3-1613.21 × 10-103.7236 × 10-6
M5-1191.74 × 10-102.0168 × 10-6
M8-1607.30 × 10-108.4684 × 10-6
M10-2522.92 × 10-93.3884 × 10-5
表1  涂层的极化曲线拟合参数
图4  在SRB悬浮液中浸泡3、7、14 d后附着在涂层上的细菌密度
图5  在SRB悬浮液中浸泡3、7、14 d后附着在涂层上的荧光强度
图6  在含有SRB的培养基中浸泡14 d后,涂层表面的扫描电镜图像
图7  涂层表面SRB的能谱分析
图8  涂层的XPS分析总谱和Mo 3d高分辨分谱
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