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| Corrosion Protection Performance of Mixed-dimensional Attapulgite Nanocontainer Doped Organic Coatings |
MIAO Qiaozhi, YI Ruixi, ZHANG Yonglong, CAI Yunfei, YANG Feiyan, ZHANG Chaoyu, ZHANG Zihan, LI Wen, SUN Rui, YIN Yue( ), WANG Wenbo( ) |
| College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, China |
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Cite this article:
MIAO Qiaozhi, YI Ruixi, ZHANG Yonglong, CAI Yunfei, YANG Feiyan, ZHANG Chaoyu, ZHANG Zihan, LI Wen, SUN Rui, YIN Yue, WANG Wenbo. Corrosion Protection Performance of Mixed-dimensional Attapulgite Nanocontainer Doped Organic Coatings. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1169-1176.
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Abstract Natural mixed-dimensional attapulgite (mATP) with a high specific surface area was utilized as a nanocontainer to achieve a high loading capacity of the corrosion inhibitor. The prepared nanocontainer was then integrated into polyvinyl butyral (PVB) to form BTA@H-mATP/PVB anticorrosive coating aimed at enhancing the corrosion resistance of zinc substrates. Then the effect of the addition amount of the as received mATP and the acid etched ones (H-mATP) on the anticorrosion performance of the coatings was comparatively evaluated. Additionally, the self-healing mechanism of the BTA@H-mATP/PVB coating was thoroughly investigated. It was found that after acid etching, the specific surface area of H-mATP increased from 66 for the as received ones to 179 m2/g, significantly enhancing BTA loading capacity and resulting in release amounts of 0.93 and 0.90 mmol/L in alkaline and acidic environments, respectively. The |Z|0.01 Hz of the 1%-BTA@H-mATP/PVB coating is 2.54 × 106 Ω·cm2, approximately 12 times higher than that of the pure PVB coating. Notably, even after 20 days of immersion in 3.5%NaCl solution, its electrochemical impedance remained as high as 2.05 × 105 Ω·cm2, indicating excellent corrosion resistance and long-term durability. The enhanced corrosion protective performance of the coating may be attributed to the synergistic effect between the physical barrier provided by H-mATP and the localized active protection offered by BTA. This work provides novel insights into the functional design and performance optimization of nanocontainers for intelligent anticorrosive coatings.
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Received: 27 August 2025
32134.14.1005.4537.2025.272
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| Fund: National Natural Science Foundation of China(22468033);Natural Science Foundation of Inner Mongolia Autonomous Region(2024SHZR1554);Jiangsu Provincial Key Laboratory of Palygorskite Science and Applied Technology, Huaiyin Institute of Technology(HPK202302) |
Corresponding Authors:
YIN Yue, E-mail: yinyue@imu.edu.cnWANG Wenbo, E-mail: wangwenbo@imu.edu.cn
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