Shi Yuxing, Li Lingling, Xu Zheng, Qin Xiuling, Cai Yi, Zhang Wenlei, Shi Weilong, Du Xin, Guo Feng
School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu 212003, PR China.
Key Laboratory of Pollution Control Chemistry and Environmental Functional Materials for Qinghai-Tibet Plateau of the National Ethnic Affairs Commission, School of Chemistry and Environment, Southwest Minzu University, Chengdu 610041, China.
J Colloid Interface Sci. 2023 Jan 15;630(Pt A):274-285. doi: 10.1016/j.jcis.2022.10.022. Epub 2022 Oct 11.
The ideal solution to the energy shortage problem is to split water into hydrogen (H) utilizing solar-driven semiconductor photocatalytic technology. Nevertheless, severe carrier recombination is the major cause of decreased activity over photocatalysts. Construction of internal electric field (IEF) by coupling semiconductor with metal co-catalyst can effectively promote carrier separation. Herein, Co@C with the Co encapsulated in the C layer as a co-catalyst anchored on the surface of ZnInS nanosheets via a facile electrostatic self-assembly strategy, achieving outstanding photocatalytic water splitting into H under simulated solar irradiation (AM 1.5G) with the production rate of 18.1 mmol h g, which is 109.7 times higher than that of bare ZIS without assisted of Pt. Enhancement of photocatalytic H evolution activity of Co@C/ZIS is mainly attributed to the construction of giant IEF (4.6-fold higher than ZIS) and suitable environment for hydrogen adsorption and desorption (ΔG ∼ 0), which endows the following several advantages: (i) accelerating the migration and separation of photo-generated charges; (ii) improving the hydrogen release kinetics. Our work not only provides a design idea for facile preparation of a high-efficient composite photocatalyst, but also expands the application range of transition metal@carbon as a co-catalyst in energy photocatalysis.
解决能源短缺问题的理想方案是利用太阳能驱动的半导体光催化技术将水分解为氢气(H)。然而,严重的载流子复合是光催化剂活性降低的主要原因。通过将半导体与金属助催化剂耦合构建内建电场(IEF)可以有效促进载流子分离。在此,通过简便的静电自组装策略将Co封装在C层中的Co@C作为助催化剂锚定在ZnInS纳米片表面,在模拟太阳光照射(AM 1.5G)下实现了出色的光催化水分解制H,产率为18.1 mmol h g,比无Pt助催化剂的裸ZIS高109.7倍。Co@C/ZIS光催化析氢活性的提高主要归因于巨大IEF的构建(比ZIS高4.6倍)以及适合氢吸附和解吸的环境(ΔG ∼ 0),这赋予了以下几个优点:(i)加速光生电荷的迁移和分离;(ii)改善氢释放动力学。我们的工作不仅为简便制备高效复合光催化剂提供了设计思路,还拓展了过渡金属@碳作为助催化剂在能源光催化中的应用范围。