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April 3, 2026The Journal of Physical Chemistry C0 citations

Effective Decoupling Bulk Conductivity and Surface Electrochemical Stability in Sol-Gel ATO Thin Films: Insights from Electronic Structure and Crystallization Kinetics

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CTChinh Dung TrinhVNVan-Kieu NguyenCMChau Thai Mai

Key Points

  • The study aims to decouple electrical conductivity and electrochemical stability in ATO thin films through Sb-doping.
  • Preparation of ATO thin films using a sol-gel method
  • Systematic Sb-doping to evaluate its effects on properties
  • X-ray diffraction analysis with Rietveld refinement for microstructural analysis
  • Density Functional Theory (DFT) simulations to predict structural changes
  • Achieved over 3 orders of magnitude increase in electrical conductivity with minimal trade-off in corrosion resistance
  • Reduced amorphous content from 39.1% to 17.1% through Sb-doping
  • Crystallite size decreased from 65.4 nm to 41.4 nm
  • DFT predicted lattice expansion validated by experimental findings
  • Sb increases bulk metallization while enhancing surface nobility.

Abstract

Engineering materials that are simultaneously highly conductive and electrochemically robust is a persistent challenge. This work demonstrates a successful strategy to decouple these competing properties in antimony-doped tin oxide (SnO2:Sb, ATO) thin films prepared via a sol–gel method. Systematic Sb-doping enhances electrical conductivity by over 3 orders of magnitude, with only a minimal 5% trade-off in corrosion resistance. A comprehensive X-ray diffraction analysis with Rietveld refinement reveals the microstructural origin of this behavior: Sb acts as a dual-role agent, simultaneously promoting crystallization (reducing the amorphous content from 39.1% to 17.1%) and inhibiting grain growth (reducing the crystallite size from 65.4 to 41.4 nm). This structural analysis also experimentally validates major first-principles Density Functional Theory (DFT) predictions, such as significant lattice expansion. The DFT simulations rationalize the decoupled properties, revealing that Sb induces bulk metallization while increasing the surface’s intrinsic nobility (work function). The study concludes that the performance is governed by these quantified microstructural changes, offering a validated pathway for designing multifunctional electrodes.

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Cite This Study

Trinh et al. (2026) studied this question.

synapsesocial.com/papers/69cf5dc55a333a821460babdhttps://doi.org/10.1021/acs.jpcc.5c08549
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