Jiang Xinxin, Xie Wenli, Xu Xuhui, Gao Quan, Li Dongmei, Cui Bin, Liu Desheng, Qu Fanyao
School of Physics, State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, China.
Instituto de Física, Universidade de Brasília, Brasília-DF 70919-970, Brazil.
Nanoscale. 2022 May 19;14(19):7292-7302. doi: 10.1039/d2nr01387h.
Alongside highly efficient photocatalysts, high photovoltaic performance is also a key element for efficiently harvesting solar energy. Developing bifunctional materials which satisfy concurrently these two demands is an appealing strategy for solving the current serious energy and environmental issues. Based on first-principles and quantum transport calculations, we designed this kind of novel bifunctional material: Janus GeC/SnSSe van der Waals heterostructure (vdWH). We demonstrate that it is a highly efficient direct Z-scheme photocatalyst. However, unlike traditional direct Z-scheme photocatalysts, the GeC/SnSSe vdWH possesses a small energy separation between the low conduction band located in SnSSe and the high valence band residing in the GeC layer, which significantly fosters the interlayer charge transfer. Hence, its solar-to-hydrogen conversion efficiency reaches as high as 68.37%. Moreover, we also find that tensile strain promotes an astonishing increase in photovoltaic performance, , 4% tensile strain leads to an increase of the photocurrent by 40%.
除了高效的光催化剂外,高光伏性能也是有效收集太阳能的关键要素。开发同时满足这两个要求的双功能材料是解决当前严峻能源和环境问题的一种有吸引力的策略。基于第一性原理和量子输运计算,我们设计了这种新型双功能材料:Janus GeC/SnSSe范德华异质结构(vdWH)。我们证明它是一种高效的直接Z型光催化剂。然而,与传统的直接Z型光催化剂不同,GeC/SnSSe vdWH在位于SnSSe中的低导带和位于GeC层中的高 价带之间具有较小的能量分离,这显著促进了层间电荷转移。因此,其太阳能到氢能的转换效率高达68.37%。此外,我们还发现拉伸应变会使光伏性能惊人地提高,4%的拉伸应变会使光电流增加40%。