Shanghai Key Laboratory for R&D and Application of Metallic Functional Materials, Functional Materials Research Laboratory, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, China.
Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, China.
Small. 2020 Jul;16(26):e2001573. doi: 10.1002/smll.202001573. Epub 2020 May 19.
Polarization field engineering of piezoelectric materials is considered as an advisable strategy in fine-tuning photocatalytic performance which has drawn much attention recently. However, the efficient charge separation that determines the photocatalytic reactivities of these materials is quite restricted. Herein, a judicious combination of piezoelectric and photocatalytic performances of BiOX/BaTiO (X = Cl, Br, Cl Br ) to enable a high piezophotocatalytic activity is demonstrated. Under the synergic advantages of chemical potential difference and piezoelectric potential difference in BiOX/BaTiO composites, the photoinduced carriers recombination is largely halted, which directly contributes to the significantly promoted piezophotocatalytic activity of piezoelectric composites. Inspiringly, the BiOBr/BaTiO composites under light irradiation with auxiliary ultrasonic activation result in an ultrahigh and stable photocatalytic performance, which is much higher than the total of those by isolated photocatalysis and piezocatalysis, and can rival current excellent photocatalytic system. In fact, the theoretical piezoelectric potential difference of BiOBr/BaTiO composites reaches 100 mV, which far exceeds the pure BaTiO of 31.21 mV and BiOBr of 30 mV, respectively. First, fabrication of BiOX/BaTiO piezoelectric composites and its remarkable piezophoto coupling catalysis behavior lays new ground for developing high-efficiency piezoelectric photocatalysts in purifying wastewater, killing bacteria, and other piezophototronic processes.
压电材料的极化场工程被认为是微调光催化性能的一种可行策略,最近引起了广泛关注。然而,决定这些材料光催化反应活性的有效电荷分离受到很大限制。在此,展示了一种巧妙的结合 BiOX/BaTiO(X = Cl、Br、Cl-Br)的压电和光催化性能的方法,以实现高的压光电催化活性。在 BiOX/BaTiO 复合材料中化学势差和压电势差的协同优势下,光生载流子的复合被大大阻止,这直接导致压光电催化剂的活性显著提高。令人鼓舞的是,在光照射下辅助超声激活的 BiOBr/BaTiO 复合材料表现出超高且稳定的光催化性能,远高于单独光催化和压电催化的总和,可与当前优秀的光催化体系相媲美。事实上,BiOBr/BaTiO 复合材料的理论压电势差达到 100 mV,分别远远超过纯 BaTiO 的 31.21 mV 和 BiOBr 的 30 mV。首先,BiOX/BaTiO 压电器件复合材料的制备及其显著的压光电耦合催化行为为开发高效压电光催化剂在废水净化、杀菌等压光电过程中开辟了新的途径。