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Rolling the WSSe Bilayer into Double-Walled Nanotube for the Enhanced Photocatalytic Water-Splitting Performance

机译:将WSSE双层滚入双壁纳米管中以增强光催化水分裂性能

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摘要

For the emerging Janus transition metal dichalcogenides (TMD) layered water-splitting photocatalysts, stacking the monolayers to form bilayers has been predicted to be an effective way to improve their photocatalytic performances. To achieve this, the stacking pattern plays an important role. In this work, by means of the density functional theory calculations, we comprehensively estimate energetical stability, light absorption and redox capacity of Janus WSSe bilayer with different stacking patterns. Unfortunately, the Janus WSSe bilayer with the most stable configuration recover the out-of-plane symmetry, which is not in favor of the photocatalytic reactions. However, rolling the Janus WSSe bilayer into double-walled nanotube could stabilize the appropriate stacking pattern with an enhanced instinct dipole moment. Moreover, the suitable band edge positions, high visible light absorbance, outstanding solar-to-hydrogen efficiency (up to 28.48%), and superior carrier separation promise the Janus WSSe double-walled nanotube the potential for the photocatalytic water-splitting application. Our studies not only predict an ideal water-splitting photocatalyst, but also propose an effective way to improve the photocatalytic performances of Janus layered materials.
机译:对于新兴的Janus过渡金属二甲基甲基(TMD)分层水分解光催化剂,堆叠单层形成双层形成双层是一种改善光催化性能的有效方法。为实现这一目标,堆叠模式起着重要作用。在这项工作中,通过密度泛函理论计算,我们全面估计Janus WSSE双层的大能稳定性,光吸收和氧化还原能力,具有不同的堆叠模式。不幸的是,Janus WSSE双层具有最稳定的配置恢复了平面外对称性,这不赞成光催化反应。然而,将Janus WSSE双层滚入双壁纳米管可以稳定适当的堆叠模式,具有增强的本能偶极矩。而且,合适的带边位置,高可见光吸光度,出色的太阳能 - 氢效率(高达28.48%),优越的载体分离承诺Janus WSSE双壁纳米管的电位是光催化水分裂施用。我们的研究不仅预测了理想的水分裂光催化剂,还提出了一种改善Janus分层材料的光催化性能的有效方法。

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