Chen Zhihao, Guo Feng, Sun Haoran, Shi Yuxing, Shi Weilong
School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu 212003, PR. China.
School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu 212003, PR. China.
J Colloid Interface Sci. 2022 Feb;607(Pt 2):1391-1401. doi: 10.1016/j.jcis.2021.09.095. Epub 2021 Sep 21.
Photocatalytic water splitting for hydrogen production is an important strategy to achieve clean energy development. In this report, a novel three-dimensional (3D) hierarchical hollow tubular g-CN/ZnInS nanosheets (HTCN/ZIS) type-Ⅱ heterojunction photocatalyst was successfully prepared and applied for photocatalytic hydrogen production under visible light irradiation. The experimental results reveal that the optimal proportion of HTCN/ZIS with the remarkable photocatalytic H evolution rate of 20738 μmol h g was obtained. The main reasons for the improvement of hydrogen production activity are as follows: (i) this unique tubular hollow structure can effectively enhances the light capturing ability by the multiple light scattering/reflection of incident light in the inner cavity; (ii) the shorten the phase plane transmission distance could reduce the path of charge transfer; (iii) the surface coated a large number of scaly ZnInS nanosheets can provide abundant reactive sites. Combining the various characterization tests, the enhanced spatial segregation of charge carriers could owning to the intimately interfacial contact and well-matched band gaps structure between g-CN and ZnInS through the type-II heterojunction. This work provides a new prospect for the construction of a novel 3D hierarchical type-II heterojunction photocatalyst for highly efficient photocatalytic hydrogen production.
光催化水分解制氢是实现清洁能源发展的重要策略。在本报告中,成功制备了一种新型的三维(3D)分级中空管状g-CN/ZnInS纳米片(HTCN/ZIS)型II异质结光催化剂,并将其应用于可见光照射下的光催化制氢。实验结果表明,获得了具有20738 μmol h g显著光催化析氢速率的HTCN/ZIS最佳比例。产氢活性提高的主要原因如下:(i)这种独特的管状中空结构可以通过内腔中入射光的多次光散射/反射有效地提高光捕获能力;(ii)缩短相平面传输距离可以减少电荷转移路径;(iii)表面包覆大量鳞状ZnInS纳米片可以提供丰富的反应位点。结合各种表征测试,电荷载流子增强的空间分离可能归因于通过II型异质结在g-CN和ZnInS之间紧密的界面接触和良好匹配的带隙结构。这项工作为构建用于高效光催化制氢的新型3D分级II型异质结光催化剂提供了新的前景。