PDF下载 分享
[1]李红玲,李紫祎,杨 阳,等.doi: 10.3969/j.issn.1001-3849.2025.06.010金属表面环境友好型绿色缓蚀剂的研究进展及缓蚀机制[J].电镀与精饰,2025,(06):67-77.
 Li Hongling*,Li Ziyi,Yang Yang,et al.Corrosion inhibition mechanism and research progress of environmentally friendly green corrosion inhibitors on metal surfaces[J].Plating & Finishing,2025,(06):67-77.
点击复制

doi: 10.3969/j.issn.1001-3849.2025.06.010金属表面环境友好型绿色缓蚀剂的研究进展及缓蚀机制

参考文献/References:

[1].Zhu J H, Wu X Y, Mohamed I M A, et al. Electrochemical and microstructural evaluation of acidification damage induced by impressed current cathodic protection after incorporating a hydroxy activated-Mg/Al-double oxide in the external anode mortar[J]. Construction and Building Materials, 2021, 309: 125116.
[2].Zhang X, Gao K, Wang F, et al. One-step immersion plating method to deposit anticorrosion nickel-sulfur coatings on copper[J]. Surface and Coatings Technology, 2018, 333: 163-167.
[3].Zhang J, Zhang L, Tao G. A novel and high-efficiency inhibitor of 5-(4-methoxyphenyl)-3h-1,2-dithiole-3-thione for copper corrosion inhibition in sulfuric acid at different temperatures[J]. Journal of Molecular Liquids, 2018, 272: 369-379.
[4].张明, 程刚, 方勇, 等. 缓蚀剂的研究现状及发展趋势[J]. 化工技术与开发, 2020, 49(4): 43-45.
[5].孟文斐, 王立新, 谭晓琼, 等. 一种新型酸化缓蚀剂的制备及性能研究[J]. 化学研究, 2020, 31(3): 233-236.
[6].Coelho L B, Fava E B, Kooijman A M, et al. Molybdate as corrosion inhibitor for hot dip galvanised steel scribed to the substrate: A study based on global and localised electrochemical approaches[J]. Corrosion Science, 2020, 175: 108893.
[7].Xu W, Wei J, Yang Z, et al. Feasibility and corrosion inhibition efficacy of zeolite-supported lauric acid imidazoline as corrosion inhibitor in cementitious mortar[J]. Construction and Building Materials, 2020, 250: 118861.
[8].Corrales-Luna M, Le Manh T, Romero- Romo M, et al. 1-Ethyl 3-methylimidazolium thiocyanate ionic liquid as corrosion inhibitor of API 5L X52 steel in H 2SO4 and HCl media[J]. Corrosion Science, 2019, 153: 85-99.
[9].Verma C, Ebenso E E, Quraishi M A. Molecular structural aspects of organic corrosion inhibitors: Influence of -CN and -NO 2 substituents on designing of potential corrosion inhibitors for aqueous media[J]. Journal of Molecular Liquids, 2020, 316: 113874.
[10].孔繁裕. 环境友好型苯并噻唑衍生物酸洗缓蚀剂的缓蚀行为研究[D]. 鞍山: 辽宁科技大学, 2022.
[11].于立冬, 李惠静, 吴彦超. 有机杂环缓蚀剂的研究进展[J].现代化工, 2022, 42(7): 56-59.
[12].Sheetal, Rashika B, Ashish K S, et al. Advancement of corrosion inhibitor system through N-heterocyclic compounds: A review[J]. Corrosion Engineering, Science and Technology, 2023, 58(1): 73-101.
[13].吕艳丽. 酸性体系中邻菲罗啉衍生物结构对低碳钢缓蚀性能的影响[D]. 鞍山: 辽宁科技大学, 2021.
[14].胡帅. 沉淀膜型缓蚀剂的机理研究[D]. 武汉: 华中科技大学, 2019.
[15].潘亮. 碳量子点的合成及其缓蚀性能研究[D]. 长沙: 湖南大学, 2022.
[16].楚天舒, 万闪, 廖伯凯, 等. 植物提取物缓蚀剂的研究进展[J]. 材料研究与应用, 2023, 17(6): 1078‐1086.
[17].Verma C, Quraishi M A, Obot I B, et al. Effect of substituent dependent molecular structure on anti-corrosive behavior of one-pot multicomponent synthesized pyrimido [2,1-B] benzothiazoles: Computer modelling supported experimental studies[J]. Journal of Molecular Liquids, 2019, 287: 110972.
[18].刘晶, 张光华, 郭杜凯, 等. 三嗪基聚醚双子咪唑啉的合成及缓蚀性能[J]. 精细化工, 2021, 38(2): 419-425, 432.
[19].张天盼. 咪唑啉缓蚀剂官能团结构对20#碳钢缓蚀作用影响[J]. 石化技术, 2021, 28(10): 18-21.
[20].Costa S N, Almeida-Neto F W Q, Campos O S, et al. Carbon steel corrosion inhibition in acid medium by imidazole-based molecules: Experimental and molecular modelling approaches[J]. Journal of Molecular Liquids, 2021, 326: 115330.
[21].Luo W, Lin Q, Ran X, et al. A new pyridazine derivative synthesized as an efficient corrosion inhibitor for copper in sulfuric acid medium: Experimental and theoretical calculation studies[J]. Journal of Molecular Liquids, 2021, 341: 117370.
[22].Khadiri A, Saddik R, Bekkouche K, et al. Gravimetric, electrochemical and quantum chemical studies of some pyridazine derivatives as corrosion inhibitors for mild steel in 1 M HCl solution[J]. Journal of the Taiwan Institute of Chemical Engineers, 2016, 58: 552-564.
[23].Xu B, Gong W, Zhang K, et al. Theoretical prediction and experimental study of 1-Butyl-2-(4-methylphenyl) benzi-midazole as a novel corrosion inhibitor for mild steel in hydrochloric acid[J]. Journal of the Taiwan Institute of Chemical Engineers, 2015, 51: 193-200.
[24].Abdulazeez I, Khaled M, Al- Saadi A A. Impact of electron-withdrawing and electron-donating substituents on the corrosion inhibitive properties of benzimidazole derivatives: A quantum chemical study[J]. Journal of Molecular Structure, 2019, 1196(2): 348-355.
[25].王春雨, 郑云香, 李亚平, 等. 双子型有机缓蚀剂研究进展[J]. 精细石油化工进展, 2024, 25(2): 16-20.
[26].刘红. 一种三氮唑双席夫碱对N80钢在HCl介质中的缓蚀作用[J]. 腐蚀与防护, 2019, 40(6): 402-407.
[27].魏晓静, 高秋英, 石鑫, 等. 双缩合希夫碱耐温酸化缓蚀剂的合成及性能研究[J]. 材料保护, 2022, 55(1): 147-158.
[28].张萌, 李清, 张鲲, 等. 丙二胺型双曼尼希碱酸化缓蚀剂的缓蚀性能[J]. 腐蚀与防护, 2022, 43(6): 26-32.
[29].董笑程, 刘冠豪, 杨敬一, 等. 双曼尼希碱缓蚀性能的量子化学研究[J]. 石油学报(石油加工), 2023, 39(1): 142-15.
[30].陈安德, 刘峰, 马建东, 等. 一种新型双曼尼希碱酸化缓蚀剂的研制及其作用机理[J]. 西安石油大学学报(自然科学版), 2022, 37(1): 114-121.
[31].Zehra S, Mobin M, Aslam R, et al. Assessment of biodegradable glycine and glutamic acid based ionic liquids as mild steel corrosion inhibitors in acid solution: An experimental and theoretical approach[J]. Journal of Molecular Structure, 2021, 1240: 130505.
[32].Kowsari E, Arman S Y, Shahini M H, et al. In situ synthesis, electrochemical and quantum chemical analysis of an amino acid-derived ionic liquid inhibitor for corrosion protection of mild steel in 1M HCl solution[J]. Corrosion Science, 2016, 112: 73-85.
[33].石磊, 刘莹, 姚山强, 等. 环境友好型缓蚀剂的研究进展[J]. 全面腐蚀控制, 2024, 38(1): 103-109.
[34].易家宝, 邹振, 黄文恒, 等. 硫酸介质中甘氨酸复合缓蚀剂的研究[J]. 广州化工, 2021, 49(16): 61-64.
[35].Silva E F, Wysard J S, Bandeira M C, et al. Electrochemical and surface enhanced Raman spectroscopy study of Guanine as corrosion inhibitor for copper[J]. Corrosion Science, 2021, 191: 109714.
[36].周洪波. 新型有机缓蚀剂对铜在含氯离子溶液中的缓蚀性能研究[D]. 南昌: 南昌大学, 2023.
[37].Chauhan D S, Quraishi M A, Srivastava V, et al. Virgin and chemically functionalized amino acids as green corrosion inhibitors: Influence of molecular structure through experimental and in silico studies[J]. Journal of Molecular Structure, 2021, 1226: 129259.
[38].Liao B, Luo Z, Wan S, et al. Insight into the anticorrosion performance of acanthopanax senticosus leaf extract as eco-friendly corrosion inhibitor for carbon steel in acidic medium[J]. Journal of Industrial and Engineering Chemistry, 2023, 117: 238-246.
[39].李梦冉, 周文彬, 周欣. 水溶性植物提取物缓蚀剂的研究进展[J]. 辽宁化工, 2024, 53(2): 265-268.
[40].王丽姿, 黄庙, 李向红. 核桃青皮提取物与碘化钾对钢在柠檬酸中的缓蚀协同效应[J].中国腐蚀与防护学报, 2021, 41(6): 819-827.
[41].Zhou Z, Min X, Wan S, et al. A novel green corrosion inhibitor extracted from waste feverfew root for carbon steel in H2SO4 solution[J]. Results in Engineering, 2023, 17: 100971.
[42].Wang Q, Wu X, Zheng H, et al. Evaluation for Fatsia japonica leaves extract (FJLE) as green corrosion inhibitor for carbon steel in simulated concrete pore solutions[J]. Journal of Building Engineering, 2023, 63: 105568.
[43].田子诚, 李国楼, 周晓荣. 薄荷叶多糖作为碳钢酸洗缓蚀剂的研究[J]. 电镀与精饰, 2024, 46(6): 34-41.
[44].Wang Q, Liu L, Zhang Q, et al. Insight into the anti-corrosion performance of artemisia argyi leaves extract as eco-friendly corrosion inhibitor for carbon steel in HCl medium[J]. Sustainable Chemistry and Pharmacy, 2022, 27: 100710.
[45].Haddadi S A, Alibakhshi E, Bahlakeh G, et al. A detailed atomic level computational and electrochemical exploration of the Juglans regia green fruit shell extract as a sustainable and highly efficient green corrosion inhibitor for mild steel in 3.5wt% NaCl solution[J]. Journal of Molecular Liquids, 2019, 284: 682-699.
[46].李永胜, 黄从树, 付琬璐, 等. 海洋防腐领域中有机缓蚀剂的研究进展[J]. 精细化工, 2023, 40(6): 1161-1175.
[47].Alrefaee S H, Rhee K Y, Verma C, et al. Challenges and advantages of using plant extract as inhibitors in modern corrosion inhibition systems: Recent advancements[J]. Journal of Molecular Liquids, 2021, 321: 114666.
[48].Y S, Rao P. Material conservation and surface coating enhancement with starch-pectin biopolymer blend: A way towards green[J]. Surfaces and Interfaces, 2019, 16: 67-75.
[49].Hassan R M, Ibrahim S M. Performance and efficiency of methyl-cellulose polysaccharide as a green promising inhibitor for inhibition of corrosion of magnesium in acidic solutions[J]. Journal of Molecular Structure, 2021, 1246: 131180.
[50].Abou-Elseoud W S, Abdel- karim A M, Hassan E A, et al. Enzyme- and acid-extracted sugar beet pectinas green corrosion inhibitors for mild steel in hydrochloric acid solution[J]. Carbohydrate Polymer Technologies and Applications, 2021, 2: 100072.
[51].Cao Y, Zou C, Wang C, et al. Green corrosion inhibitor of β-cyclodextrin modified xanthan gum for X80 steel in 1 M H 2SO4 at different temperature[J]. Journal of Molecular Liquids, 2021, 341: 117391.
[52].Li S L, Qu Q, Li L, et al. Bacillus cereus s-EPS as a dual bio-functional corrosion and scale inhibitor in artificial seawater[J]. Water Research, 2019, 166: 115094.
[53].Chen T, Gan H, Chen Z, et al. Eco-friendly approach to corrosion inhibition of AA5083 aluminum alloy in HCl solution by the expired vitamin B1 drugs[J]. Journal of Molecular Structure, 2021, 1244: 130881.
[54].李守婷. 磺胺类缓蚀剂在金属表面的缓蚀机理和吸附特性研究[D]. 上海: 上海师范大学, 2022.
[55].汉继程, 缪磊, 闫言, 等. 绿色环保型缓蚀剂的研究现状[J]. 涂层与防护, 2024, 45(4): 58-64.
[56].王伟波, 王海军, 宋雨纯, 等. 杂环吡啶季铵盐酸化缓蚀剂的合成与性能评价[J]. 石油化工应用, 2021, 40(5): 107-109, 122.
[57].徐昕, 李向红. 溴化十六烷基吡啶在硫酸溶液中对钢的缓蚀性能研究[J]. 电镀与精饰, 2021, 43(10): 1-7.
[58].童欣, 张光华, 张万斌, 等. 一种新型联苯双子季铵盐缓蚀剂的合成及性能研究[J]. 应用化工, 2021, 50(10): 2635-2640.
[59].Guo H, Sun W, Zhang Q, et al. Imidazolium ionic liquid bearing urea moiety as a new corrosion inhibitor of mild steel[J]. Journal of Molecular Liquids, 2021, 334: 116484.
[60].胡文滨, 廖伯凯, 郭兴蓬, 等. 碳基纳米缓蚀剂的研究进展[J]. 材料研究与应用, 2022, 16(5): 776-784.
[61].周舒心, 范怀林, 胡勋. 生物质基碳材料制备及其在超级电容器电极材料中的应用[J].综合智慧能源, 2023, 45(5): 1-12.
[62].李红玲. 环境友好型达克罗处理技术的现状及研究进展[J]. 表面技术, 2023, 52(10): 115-123.
[63].He Z G, Sun Y D, Zhang C, et al. Recent advances of solvent engineered carbon dots: A review [J]. Carbon, 2023, 204: 76-93.
[64].Wang B Y, Geoffrey I N W, Lu S Y. Carbon dots: mysterious past, vibrant present, and expansive future[J]. Trends in Chemistry, 2023, 5: 76-87.
[65].唐晓军. 环保缓蚀剂在金属管材中的应用研究进展[J]. 电镀与精饰, 2023, 45(11): 93-100.
[66].Cen H Y, Wu C G, Chen Z Y. N, S Co-doped carbon coated MnS/MnO/Mn nanoparticles as a novel corrosion inhibitor for carbon steel in CO 2-saturated NaCl solution [J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2021, 630: 127528.
[67].龙武剑, 唐懿, 郑淑仪, 等. 氮掺杂石墨烯量子点作为新型碳钢缓蚀剂: 从设计到机理[J]. 材料导报, 2025, 39(7): 23100196.
[68].Haruna K, Alhems L M, Saleh T A. Graphene oxide grafted with dopamine as an efficient corrosion inhibitor for oil well acidizing environments[J]. Surfaces and Interfaces, 2021, 24: 101046.
[69].岑宏宇. 纳米碳材料缓蚀剂的制备及缓蚀机理研究[D]. 武汉: 华中科技大学, 2021.
[70].Yang M L, Wu J H, Fang D Q, et al. Corrosion protection of waterborne epoxy coatings containing mussel-inspired adhesive polymers based on polyaspartamide derivatives on carbon steel[J]. Journal of Materials Science & Technology, 2018, 34(12): 2464-2471.
[71].岑宏宇, 陈振宇, 郭兴蓬. 碳量子点缓蚀剂的缓蚀行为与机理研究[J]. 表面技术, 2020, 49(11): 13-23.
[72].曹淑云, 李永威. 碳点作为环保型碳钢缓蚀剂的研究进展[J]. 材料保护, 2024, 57(4): 131-139.

更新日期/Last Update: 2025-06-18