Mondal Susmita, Das Rajib Chandra, Du Yumeng, Hou Zhenyuan, Konstantinov Konstantin, Cheng Zhenxiang
Institute for Superconducting and Electronic Materials, Faculty of Engineering and Information Sciences, University of Wollongong, Squires Way, North Wollongong, NSW, 2500, Australia.
Adv Sci (Weinh). 2025 Jun;12(23):e2500034. doi: 10.1002/advs.202500034. Epub 2025 Apr 25.
Flexocatalysis, a groundbreaking approach in mechanocatalysis, overcomes the material limitations imposed by the symmetry requirements of piezocatalysis, enabling a broader range of materials to generate free radicals through mechano-catalytic reactions. This method not only offers an eco-friendly pathway for green hydrogen production via water splitting but also facilitates the use of biocompatible materials in health diagnostics and treatments. In this study, the flexocatalytic activity of centrosymmetric SrTiO (STO) nanopowders is demonstrated, achieving notable hydrogen evolution (1289.53 µmol g h in pure water) and efficient organic dye degradation (≈94%). The mechanism is driven by electric polarization generated under non-uniform strain, which is strongly enhanced with particle size reduction, effectively linking flexoelectricity to superior electrochemical performance. The findings highlight the potential of flexocatalysis to revolutionize hydrogen production and broaden the range of materials for catalytic applications, paving the way for innovative energy-harvesting technologies.
挠曲催化是机械催化领域的一种开创性方法,它克服了压电催化对称性要求所带来的材料限制,使更多材料能够通过机械催化反应产生自由基。该方法不仅为通过水分解生产绿色氢气提供了一条环保途径,还促进了生物相容性材料在健康诊断和治疗中的应用。在本研究中,展示了中心对称的SrTiO(STO)纳米粉末的挠曲催化活性,实现了显著的析氢(在纯水中为1289.53 µmol g h)和高效的有机染料降解(约94%)。其机制是由非均匀应变下产生的电极化驱动的,随着粒径减小,这种电极化会显著增强,有效地将挠曲电与优异的电化学性能联系起来。这些发现突出了挠曲催化在革新制氢方式以及拓宽催化应用材料范围方面的潜力,为创新的能量收集技术铺平了道路。