Polyaniline/Ti(3)C(2) MXene Composites with Artificial 3D Biomimetic Surface Structure of Natural Macaw Feather Applied for Anticorrosion Coatings

具有仿生三维表面结构的聚苯胺/Ti(3)C(2) MXene复合材料(仿生表面结构模拟天然金刚鹦鹉羽毛)在防腐涂层中的应用

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Abstract

In this paper, a series of polyaniline (PANI)/Ti(3)C(2) MXene composites (PMCs) with a biomimetic structure were prepared and employed as an anticorrosion coating application. First, the PANI was synthesized by oxidative polymerization with ammonium persulfate as the oxidant. Then, 2D Ti(3)C(2) MXene nanosheets were prepared by treating the Ti(3)AlC(2) using the optimized minimally intensive layer delamination (MILD) method, followed by characterization via XRD and SEM. Subsequently, the PMC was prepared by the oxidative polymerization of aniline monomers in the presence of Ti(3)C(2) MXene nanosheets, followed by characterization via FTIR, XRD, SEM, TEM, CV, and UV-Visible. Eventually, the PMC coatings with the artificial biomimetic surface structure of a macaw feather were prepared by the nano-casting technique. The corrosion resistance of the PMC coatings, evaluated via Tafel polarization and Nyquist impedance measurements, shows that increasing the MXene loading up to 5 wt % shifts the corrosion potential (E(corr)) on steel from -588 mV to -356 mV vs. SCE, reduces the corrosion current density (I(corr)) from 1.09 µA/cm(2) to 0.035 µA/cm(2), and raises the impedance modulus at 0.01 Hz from 67 kΩ to 3794 kΩ. When structured with the hierarchical feather topography, the PMC coating (Bio-PA-MX-5) further advances the E(corr) to +103.6 mV, lowers the I(corr) to 7.22 × 10(-4) µA/cm(2), and boosts the impedance to 96,875 kΩ. Compared to neat coatings without biomimetic structuring, those with engineered biomimetic surfaces showed significantly improved corrosion protection performance. These enhancements arise from three synergistic mechanisms: (i) polyaniline's redox catalysis accelerates the formation of a dense passive oxide layer; (ii) MXene nanosheets create a tortuous gas barrier that cuts the oxygen permeability from 11.3 Barrer to 0.9 Barrer; and (iii) the biomimetic surface traps air pockets, raising the water contact angle from 87° to 135°. This integrated approach delivers one of the highest combined corrosion potentials and impedance values reported for thin-film coatings, pointing to a general strategy for durable steel protection.

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