Department of Chemistry, Sungkyunkwan University (SKKU), Suwon16419, Republic of Korea.
Center for Integrated Nanostructure Physics (CINAP), Institute for Basic Science (IBS), Sungkyunkwan University (SKKU), Suwon16419, Republic of Korea.
ACS Appl Mater Interfaces. 2022 Dec 7;14(48):53603-53614. doi: 10.1021/acsami.2c11936. Epub 2022 Nov 21.
Band-edge modulation of halide perovskites as photoabsorbers plays significant roles in the application of photovoltaic and photochemical systems. Here, Lewis acidity of dopants (M) as the new descriptor of engineering the band-edge position of the perovskite is investigated in the gradiently doped perovskite along the core-to-surface (CsPbBr-CsPbMBr). Reducing M-bromide bond strength with an increase in hardness of acidic M increases the electron ability of basic Br, thus strengthening the Pb-Br orbital coupling in M-Pb-Br, noted as the inductive effect of dopants. Especially, the highly hard Lewis acidic Mg localized in the outer position of the perovskite induces the increase of work function and then shifts band edge upward along the core-to-surface of the perovskite. Thus, charge separation driven by the dopant-induced internal electric field induces the slow annihilation of the excited holes, improving the slow aromatic C-H dissociation in the photocatalytic oxidation process by ∼211% (491.39 μmol g h) enhancements, compared with undoped nanocrystals.
卤化物钙钛矿作为光吸收体的能带调制在光伏和光化学系统的应用中起着重要作用。在这里,我们研究了掺杂剂(M)的路易斯酸度作为工程化钙钛矿能带位置的新描述符,该钙钛矿沿着核-壳(CsPbBr-CsPbMBr)进行梯度掺杂。随着酸性 M 硬度的增加,M-溴键强度降低,增加了碱性 Br 的电子能力,从而加强了 M-Pb-Br 中的 Pb-Br 轨道耦合,这被称为掺杂剂的诱导效应。特别是,高度硬的路易斯酸性 Mg 局域在钙钛矿的外部位置,诱导功函数的增加,从而沿着钙钛矿的核-壳向上移动能带边缘。因此,由掺杂剂诱导的内电场驱动的电荷分离诱导激发空穴的缓慢猝灭,与未掺杂纳米晶体相比,在光催化氧化过程中缓慢的芳香族 C-H 解离提高了约 211%(491.39 μmol g h)。