Chen Yu-Ching, Chen Po-Han, Liao Yin-Song, Chou Jyh-Pin, Wu Jyh Ming
Department of Materials Science and Engineering, National Tsing Hua University, 101 Section 2 Kuang Fu Road, Hsinchu, 300, Taiwan.
Ph.D. Program in Prospective Functional Materials Industry, National Tsing Hua University, 101 Section 2 Kuang Fu Road, Hsinchu, 300, Taiwan.
Small. 2024 Aug;20(31):e2401116. doi: 10.1002/smll.202401116. Epub 2024 Mar 8.
In this study, the flexoelectric characteristics of 2D TiO nanosheets are examined. The theoretical calculations and experimental results reveal an excellent strain-induced flexoelectric potential (flexopotential) by an effective defect engineering strategy, which suppresses the recombination of electron-hole pairs, thus substantially improving the catalytic activity of the TiO nanosheets in the degradation of Rhodamine B dye and the hydrogen evolution reaction in a dark environment. The results indicate that strain-induced bandgap reduction enhances the catalytic activity of the TiO nanosheets. In addition, the TiO nanosheets degraded Rhodamine B, with k being ≈1.5 × 10 min in dark, while TiO nanoparticles show only an adsorption effect. 2D TiO nanosheets achieve a hydrogen production rate of 137.9 µmol g h under a dark environment, 197% higher than those of TiO nanoparticles (70.1 µmol g h). The flexopotential of the TiO nanosheets is enhanced by increasing the bending moment, with excellent flexopotential along the y-axis. Density functional theory is used to identify the stress-induced bandgap reduction and oxygen vacancy formation, which results in the self-dissociation of HO on the surface of the TiO in the dark. The present findings provide novel insights into the role of TiO flexocatalysis in electrochemical reactions.
在本研究中,对二维TiO纳米片的挠曲电特性进行了研究。理论计算和实验结果表明,通过有效的缺陷工程策略可产生优异的应变诱导挠曲电势(挠曲电位),该策略抑制了电子-空穴对的复合,从而显著提高了TiO纳米片在罗丹明B染料降解和黑暗环境中析氢反应中的催化活性。结果表明,应变诱导的带隙减小增强了TiO纳米片的催化活性。此外,TiO纳米片降解了罗丹明B,在黑暗中k约为1.5×10⁻³ min⁻¹,而TiO纳米颗粒仅表现出吸附作用。二维TiO纳米片在黑暗环境下的产氢速率为137.9 μmol g⁻¹ h⁻¹,比TiO纳米颗粒(70.1 μmol g⁻¹ h⁻¹)高197%。通过增加弯矩可增强TiO纳米片的挠曲电位,沿y轴具有优异的挠曲电位。利用密度泛函理论确定了应力诱导的带隙减小和氧空位的形成,这导致黑暗中TiO表面的HO自解离。本研究结果为TiO挠曲催化在电化学反应中的作用提供了新的见解。