Chitosan nanocomposite coatings with enhanced corrosion inhibition effects for copper

被引:48
作者
Bahari, Helma Sadat [1 ,2 ]
Ye, Fei [2 ]
Carrillo, Esteban Alejandro Toledo [2 ]
Leliopoulos, Christos [2 ]
Savaloni, Hadi [1 ]
Dutta, Joydeep [2 ]
机构
[1] Univ Tehran, Coll Sci, Sch Phys, North Kargar St,POB 14395-547, Tehran, Iran
[2] KTH Royal Inst Technol, Sch Engn Sci, Dept Appl Phys, Funct Mat, Hannes Alfvens Vag 12, S-11419 Stockholm, Sweden
关键词
Chitosan; Nanocomposite; Coatings; Anticorrosion; Copper; PROTECTIVE ORGANIC COATINGS; KRAMERS-KRONIG TRANSFORMS; CROSS-LINKING DENSITY; FTIR/ATR IN-SITU; ELECTROCHEMICAL IMPEDANCE; MECHANICAL-PROPERTIES; ANTICORROSION; NANOPARTICLES; ACID; VALIDATION;
D O I
10.1016/j.ijbiomac.2020.08.035
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A biopolymer coating on copper was prepared based on chitosan nanocomposite and its corrosion inhibition efficiency was investigated. Inclusion of silica nanoparticles substantially reduces swelling ratio of chitosan coating while enhancing its thermal stability. The corrosion resistance of chitosan-based coatings is improved by introducing 2-mercaptobenzothiazole and silica in the matrix. It is found that upon crosslinking the chitosan coatings, a higher corrosion resistance could be achieved and the highest inhibition efficiency for chitosan nanocomposite coatings is calculated as 85%. The corrosion mechanism is found closely related to mass transition and diffusion process, and also the polarization resistance contributes to the impedance. Calculated impedance using Kramers-Kronig transformation shows good agreement with experimental values, thus validating the impedance measurements. This study exhibits the enhanced efficiency of nanocomposite and potential of chitosan coatings in corrosion prevention for copper. (C) 2020 The Authors. Published by Elsevier B.V.
引用
收藏
页码:1566 / 1577
页数:12
相关论文
共 47 条
[1]  
Agency for Toxic Substances and Disease Registry (ATSDR, 2017, TOX PROF GLUT
[2]   Enhancement of anticorrosion property of 304 stainless steel using silane coatings [J].
Akhtar, Sultan ;
Matin, Asif ;
Kumar, A. Madhan ;
Ibrahim, Ahmed ;
Laoui, Tahar .
APPLIED SURFACE SCIENCE, 2018, 440 :1286-1297
[3]   Chitosan-zinc oxide nanocomposite coatings for the prevention of marine biofouling [J].
Al-Naamani, Laila ;
Dobretsov, Sergey ;
Dutta, Joydeep ;
Burgess, J. Grant .
CHEMOSPHERE, 2017, 168 :408-417
[4]   Chitosan-zinc oxide nanoparticle composite coating for active food packaging applications [J].
Al-Naamani, Laila ;
Dobretsov, Sergey ;
Dutta, Joydeep .
INNOVATIVE FOOD SCIENCE & EMERGING TECHNOLOGIES, 2016, 38 :231-237
[5]  
Alsabagh A.M., 2014, Egyptian Journal of Petroleum, V23, P349, DOI DOI 10.1016/J.EJPE.2014.09.001
[6]   Alternative methods for copper corrosion studies in household plumbing systems [J].
Armanious, A. ;
Johannsen, K. .
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2012, 63 (05) :438-444
[7]   Corrosion of cold-deformed brass in acid sulphate solution [J].
Avramovic, Z ;
Antonijevic, M .
CORROSION SCIENCE, 2004, 46 (11) :2793-2802
[8]   Surface analysis of Cu coated with ALD Al2O3 and its corrosion protection enhancement in NaCl solution: EIS and polarization [J].
Bahari, Helma Sadat ;
Savaloni, Hadi .
MATERIALS RESEARCH EXPRESS, 2019, 6 (08)
[9]   2-Mercaptobenzothiazole doped chitosan/11-alkanethiolate acid composite coating: Dual function for copper protection [J].
Bao, Qi ;
Zhang, Dun ;
Wan, Yi .
APPLIED SURFACE SCIENCE, 2011, 257 (24) :10529-10534
[10]   Kramers-Kronig transforms calculation with a fast convolution algorithm [J].
Bruzzoni, P ;
Carranza, RM ;
Lacoste, JRC ;
Crespo, EA .
ELECTROCHIMICA ACTA, 2002, 48 (04) :341-347