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April 27, 2026EcoEnergy1 citationsOpen Access

Defect‐Engineered SrTiO 3‐x for Flexoelectric‐Dominated Catalysis

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YHYu-Chun HuangYJYue JiangHWHaotian Wen

Key Points

  • This research aims to investigate the effects of defect engineering in strontium titanate nanoparticles on flexocatalytic performance.
  • Prepared reduced strontium titanate nanoparticles using a solid-state reduction method.
  • Measured degradation of Rhodamine B and hydrogen production rates under flexocatalytic conditions.
  • Compared kinetic rates and production efficiencies of R-STO and pristine STO.
  • Achieved > 78% degradation of Rhodamine B in 45 minutes with R-STO.
  • Kinetic rate constant for R-STO was 0.0307 min −1, nearly double that of pristine STO (0.0163 min −1).
  • R-STO produced hydrogen at 380.8 μmol/g/h, a fourfold increase compared to pristine STO (94.5 μmol/g/h).

Abstract

ABSTRACT Flexocatalysis provides an alternative route for converting mechanical energy into electrical energy through flexoelectricity, thereby avoiding the crystal‐symmetry constraints that limit conventional piezocatalysis to non‐centrosymmetric materials. In this study, strong flexocatalytic effects were established in reduced strontium titanate (R‐STO) nanoparticles prepared by a facile solid‐state reduction route. Regulated generation of oxygen vacancies generates near‐surface lattice distortion and a gradient in lattice strain, which together give rise to substantial flexoelectric polarization, and thus R‐STO demonstrates an excellent capability for Rhodamine B (RhB) decomposition, achieving > 78% degradation within 45 min. The kinetic rate constant of R‐STO (0.0307 min −1 ) is nearly double that of pristine STO (0.0163 min −1 ), primarily due to enhanced charge separation and prolonged electron–hole pair lifetimes induced by the flexoelectric polarization. R‐STO also exhibits an impressive co‐catalyst‐free hydrogen production rate of 380.8 μmol/g/h, representing a fourfold increase over pristine STO (94.5 μmol/g/h). This enhancement is attributed to synergistic effects of improved charge separation and transfer, a favorable band structure, and optimized adsorption configurations during catalysis. These results underscore the promise of flexocatalysis for applications in environmental remediation and renewable energy production.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69eefde9fede9185760d4aa8https://doi.org/10.1002/ece2.70067
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