Department of Chemistry, College of Science, Zhejiang Sci-Tech University, Hangzhou 310018, China.
School of Materials Science and Engineering, Anhui University of Science and Technology, Huainan, Anhui 232001, China.
J Colloid Interface Sci. 2017 Nov 1;505:653-663. doi: 10.1016/j.jcis.2017.06.060. Epub 2017 Jun 20.
Investigating the dependence of the catalysis on the size and structure of materials is of great significance for exploiting catalysts with characteristics of high activity, low cost, and new property. Non-precious metal catalysts bear high hope to meet the increasing demands of industrial applications in a cost-effective and environmentally friendly way. In this work, we take size-controlled BiOCl nanosheets as examples, which are synthesized via a hydrothermal method by changing the reaction conditions. The BiOCl nanosheets were characterized in details to understand their size-property relationships, and were found to exhibit a series of thickness-dependent physicochemical properties, including specific surface area, light absorption, and the separation efficiency of photo-generated charge carriers. Moreover, this work demonstrates the first example that BiOCl nanostructures have very high catalytic activity for the reduction of nitrophenols by sodium borohydride, without any light irradiation. The high catalytic activity of BiOCl nanosheets was proved to be due to the metallic Bi clusters that were produced by surface Bi (III) reduction. The catalytic activity increased greatly with a decrease in the average thickness from 106.42nm of BiOCl(HO) to 3.47nm of ultrathin BiOCl, because the increased specific surface area provided more active sites for catalytic reactions. As a result, this work provides evidences for the size-property relationships of nanostructured catalysts as well as some inspirations for exploiting novel heterogeneous catalysis of BiOCl nanomaterials.
研究材料的尺寸和结构依赖性对于开发具有高活性、低成本和新性能的催化剂具有重要意义。非贵金属催化剂有望以经济有效的环保方式满足工业应用日益增长的需求。在这项工作中,我们以尺寸可控的 BiOCl 纳米片为例,通过改变反应条件,采用水热法合成。详细表征了 BiOCl 纳米片,以了解其尺寸-性能关系,发现它们表现出一系列厚度依赖的物理化学性质,包括比表面积、光吸收和光生载流子的分离效率。此外,这项工作首次证明了 BiOCl 纳米结构在没有任何光照的情况下,对硼氢化钠还原硝基苯酚具有非常高的催化活性。BiOCl 纳米片的高催化活性归因于表面 Bi(III)还原生成的金属 Bi 簇。随着平均厚度从 106.42nm 的 BiOCl(HO) 降低到 3.47nm 的超薄 BiOCl,催化活性大大提高,因为增加的比表面积为催化反应提供了更多的活性位点。因此,这项工作为纳米结构催化剂的尺寸-性能关系提供了证据,并为开发 BiOCl 纳米材料的新型非均相催化提供了一些启示。