Key Laboratory of Key Technical Factors in Zhejiang Seafood Health Hazards, Institute of Innovation & Application, Zhejiang Ocean University, Zhoushan, Zhejiang Province 316022, China.
Key Laboratory of Key Technical Factors in Zhejiang Seafood Health Hazards, Institute of Innovation & Application, Zhejiang Ocean University, Zhoushan, Zhejiang Province 316022, China.
J Colloid Interface Sci. 2018 Nov 15;530:171-178. doi: 10.1016/j.jcis.2018.06.084. Epub 2018 Jun 28.
One of the great challenges in the field of photocatalysis is to develop novel photocatalysts with excellent solar-light-harvesting capacity and separation efficiency of photo-induced charge. Herein, novel CeO/BiMoO heterojunctions were fabricated through in-situ precipitation of CeO nanoparticles (size: ∼26 nm) on the surface of flower-like BiMoO superstructures (diameter: 2.1-3.5 μm) by a simple method. The as-prepared photocatalysts were systematically characterized by a range of techniques. The photocatalytic degradation of rhodamine B (RhB) dye, methyl orange (MO) dye and tetracycline (TC) antibiotic by this novel photocatalyst was investigated under visible-light irradiation. The CeO/BiMoO heterojunction with a CeO/BiMoO weight ratio of 0.05 (0.05Ce-Bi) exhibited the highest photocatalytic activity with the RhB degradation efficiency of 100% in 75 min, which was considerably higher than those of pristine CeO (26.8%) and BiMoO (80.3%) as well as their physical mixtures (74.8%). The more efficient separation of electron-hole pairs was identified as the primary reason of the enhanced photocatalytic activity. Moreover, the synthesized material maintained satisfactory activity even after 6 recycling runs, indicating its high photocatalytic stability. Therefore, our finding offers a new avenue for development of stable and efficient heterojunction photocatalysts for environmental purification.
在光催化领域,面临的一项重大挑战是开发具有优异的太阳光捕获能力和光生载流子分离效率的新型光催化剂。在此,通过一种简单的方法,在花状 BiMoO 超结构(直径:2.1-3.5μm)表面原位沉淀 CeO 纳米颗粒(尺寸:∼26nm),制备了新型 CeO/BiMoO 异质结。采用一系列技术对所制备的光催化剂进行了系统的表征。在可见光照射下,研究了该新型光催化剂对罗丹明 B(RhB)染料、甲基橙(MO)染料和四环素(TC)抗生素的光催化降解性能。CeO/BiMoO 质量比为 0.05(0.05Ce-Bi)的 CeO/BiMoO 异质结具有最高的光催化活性,在 75min 内 RhB 的降解效率达到 100%,明显高于纯 CeO(26.8%)、BiMoO(80.3%)及其物理混合物(74.8%)。电子-空穴对的更有效分离被认为是增强光催化活性的主要原因。此外,即使经过 6 次回收循环,所合成的材料仍保持着令人满意的活性,表明其具有较高的光催化稳定性。因此,我们的发现为开发用于环境净化的稳定高效的异质结光催化剂提供了新途径。