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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Ferroelectricity in 2D metal phosphorus trichalcogenides and van der Waals heterostructures for photocatalytic water splitting
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Ferroelectricity in 2D metal phosphorus trichalcogenides and van der Waals heterostructures for photocatalytic water splitting

机译:2D金属磷的铁电性TrichalOgers和Van der WaaSS的异质结构,用于光催化水分裂

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摘要

Integration of ferroelectricity into van der Waals heterostructures offers additional opportunities to control over the properties and functionalities of heterostructures by switching the direction of polarization via an external electric field. To discover potential ferroelectric monolayers that exhibit out-of-plane electric polarizations, we screen a family of metal phosphorus trichalcogenides M1M2P(2)X(6) with M1 = Cu/Ag, M2 = In/Bi, X = S/Se using density functional theory calculations. We predict room-temperature ferroelectricity in CuInP2S6 and CuBiP2S6 monolayers with out-of-plane polarizations (P-s) of 0.59 mu C cm(-2) and 0.35 mu C cm(-2), respectively. The strong metal-chalcogenide M1-X bond in the two Cu and S-based systems is responsible for their high phase transition temperatures. The polarizations in ferroelectric monolayers can persist in van der Waals heterostructures, and band gaps as well as band alignment of the heterostructures can be tuned by switching the polarization direction. Finally, we demonstrate that both visible light absorption and type-II band alignment facilitating fast charge separation can be realized in CuInP2S6/Mn2P2S6 and CuInP2S6/Zn2P2Se6 ferroelectric heterostructures, which are promising for applications in photocatalytic water splitting.
机译:将铁电性集成到范德瓦尔斯异质结构中,通过外部电场切换极化方向,提供了控制异质结构性质和功能的额外机会。为了发现具有平面外电极化的潜在铁电单分子膜,我们使用密度泛函理论计算筛选了一系列金属磷三卤代化合物M1M2P(2)X(6),其中M1=Cu/Ag,M2=In/Bi,X=S/Se。我们预测了CuInP2S6和CuBiP2S6单分子膜的室温铁电性,其平面外极化(P-s)分别为0.59μC cm(-2)和0.35μC cm(-2)。两种铜基和硫基体系中的强金属硫属化合物M1-X键是其高相变温度的原因。铁电单分子膜中的极化可以在范德华异质结构中持续存在,并且可以通过改变极化方向来调节异质结构的带隙和带排列。最后,我们证明了CuInP2S6/Mn2P2S6和CuInP2S6/Zn2P2Se6铁电异质结构可以实现可见光吸收和II型带排列,从而促进快速电荷分离,这两种结构在光催化分解水方面具有广阔的应用前景。

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