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Journal of Chinese Society for Corrosion and protection  2026, Vol. 46 Issue (1): 207-219    DOI: 10.11902/1005.4537.2025.085
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Chloride Ion Capture and Responsive Corrosion Inhibition Behavior of ZnAlCe-NO2 Hydrotalcite @ Silane Coating
TAN Jingsha, GUO Yichao, CHEN Junlin, GAI Wenfeng, MENG Guozhe()
School of Chemical Engineering and Technology, Sun Yat-sen University, Zhuhai 519082, China
Cite this article: 

TAN Jingsha, GUO Yichao, CHEN Junlin, GAI Wenfeng, MENG Guozhe. Chloride Ion Capture and Responsive Corrosion Inhibition Behavior of ZnAlCe-NO2 Hydrotalcite @ Silane Coating. Journal of Chinese Society for Corrosion and protection, 2026, 46(1): 207-219.

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Abstract  

The unique lamellar structure of cations and anions in hydrotalcite (LDH) endows the interlayer anions with the characteristic of easy ion exchange with the environment, making it an excellent inorganic nanocontainer. In this study, a corrosion inhibitor ZnAlCe-NO2 LDH loaded with NO2- was prepared by one-step co-precipitation method and which then was added to the sol gel silane coating. It may be reasonably inferred that at defect sites of the coating Ce ions within the LDH lamellae may be response and release where local hydrolysis acidification environment has been generated during the coating service, which then act as a means to inhibit the corrosion of the substrate metal; Meanwhile, the NO2- of high energy state situated between the ZnAlCe-NO2 LDH lamellae and will spontaneously exchange-react with the infiltrated chloride ions (Cl-) in the coating, which result in not only capturing and fixing the free Cl- in the LDH lamellar structure, but also releasing the pre-loaded corrosion inhibitor within the LDH lamellae so that to enhance the protective performance of the coating, just like a Chinese proverb “kill two birds with one stone”. Electrochemical tests in a 0.05 mol/L NaCl solution showed that ZnAlCe-NO2 LDH had a corrosion inhibition efficiency of 97.57% for carbon steel. Compared with the blank sol gel coating, the corrosion protection performance of the sol gel coating doped with 2.5 mg/mL ZnAlCe-NO2 LDH has been significantly improved.

Key words:  hydrotalcite      ion exchange      corrosion inhibitor controlled release      sol gel coating      self repair     
Received:  12 March 2025      32134.14.1005.4537.2025.085
ZTFLH:  TG174  
Fund: National Natural Science Foundation of China(52171093);National Key Research and Development Program(2019YFE0111000)

URL: 

https://www.jcscp.org/EN/10.11902/1005.4537.2025.085     OR     https://www.jcscp.org/EN/Y2026/V46/I1/207

Fig.1  Schematic illustration of the preparation of layered double hydroxide (LDH) and silane-based sol-gel coatings modified with NO2--intercalated LDH
Fig.2  SEM images of ZnAl-LDH and ZnAlCe-NO2 LDH, EDS spectra of ZnAlCe-NO2 LDH (a), XPS spectra of different hydrotalcite samples (Zn 2p) (b), (Al 2p) (c), (N 1s) (d), (Ce 3d) (e) XRD images of different hydrotalcite samples (f), FT-IR figures (g), TG and DTG figures (h), Q235 carbon steel in blank solution and ZnAlCe-NO2 added under different sodium chloride concentrations variation of corrosion potential (i) and low-frequency modulus (j) in LDH solution, chloride ion adsorption and corrosion inhibitor release curve (k) of ZnAlCe-NO2 LDH hydrotalcite samples
Fig.3  Bode plots (a, b) and Nyquist plots (c) of carbon steel in ZnAlCe-NO2 LDH-containing solution. Polarization curves of carbon steel after immersion in 0.05 mol/L NaCl blank solution and 0.05 mol/L NaCl solution containing ZnAlCe-NO2 LDH for different durations: 24 h (d) and 48 h (e). Equivalent circuit models (a, b) for EIS fitting (f)
SampleTime

Rs

/ Ω·cm2

CPEf

/ Y0-1·cm-2·S n )

n

Rf

/ Ω·cm2

Qdl

/ Y0-1·cm-2·S n )

n

Rct

/ Ω·cm2

Rw/ Ω·cm2
Carbon steel1 h110.5---4.039 × 10-40.781.876 × 1035.954 × 10-3
ZnAlCe-NO2 LDH1 h112.9---2.006 × 10-40.821.468 × 1048.688 × 10-3
6 h111.21.871 × 10-40.83125.38.09 × 10-50.831.162 × 1041.133 × 10-3
12 h101.12.234 × 10-40.81134.87.022 × 10-50.901.793 × 1045.202 × 10-3
24 h90.62.861 × 10-40.79120.16.857 × 10-50.981.915 × 1045.750 × 10-3
48 h111.22.718 × 10-40.8078.081.470 × 10-40.941.410 × 1041.600 × 10-3
Table 1  Fitting parameters from EIS spectra of Q235 carbon steel soaked in NaCl mixed solution for different time
Fig.4  High-resolution micrographs of carbon steel after 24 h immersion in (a) 0.05 mol/L NaCl solution and (b) S/LDH-NO2 solution. FT-IR spectrum (c) and XRD pattern (d) of carbon steel immersed in blank 0.05 mol/L NaCl solution and S/LDH-NO2 solution for 24 h. XRD patterns of ZnAlCe-NO2-LDH before and after ion exchange in NaCl solution (e)
Fig.5  SEM patterns (a), (b) of blank sol gel coating, ZnAlCe-NO2 LDH-doped sol gel coating, cross-section and energy spectrum (c) of blank sol gel coating, ZnAlCe-NO2 LDH doped sol gel coating cross-section and energy spectrum (d)
Fig.6  Bode plots (a1-d1) and Nyquist plots (a2-d2) of different coatings after immersion in 0.05 mol/L NaCl solution for varying durations: SC (a1, a2), SC/NO2-LDH1 (b1, b2), SC/NO2-LDH2.5 (c1, c2), SC/NO2-LDH10 (d1, d2). Equivalent circuit Model a: R(Q(R(QR))) (e)
Fig.7  Variation curves of EIS-fitted parameters with immersion time: (a) coating resistance (RcRc), (b) coating capacitance (QcQc), (c) charge transfer resistance (RctRct). Low-frequency modulus variation curve (d) and open-circuit potential variation curve (e). Polarization curves of different coating samples after 6 h immersion in NaCl solution (f)
Fig.8  SKP (Scanning Kelvin Probe) maps of (a, b) blank silane coating (SC) and (c, d) sol-gel coating (SC/NO2-LDH2.5) measured after immersion in 0.05 mol/L NaCl solution for (a, c) 30 min and (b, d) 90 min
Fig.9  Corrosion protection mechanism of doped Sol-Gel coatings
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