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Ab Initio Study of the Role of Oxygen and Excess Electrons in the Degradation of CH3NH3Pbl3

机译:从头算研究氧和过量电子在CH 3 NH 3 Pbl 3 降解中的作用

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Excess electrons from photo-excitation, impurities and defects play a significant role in the degradation of CH3NH3Pbl3 (MAPbI3) perovskite in the air [1-4]. However, this role has not fully been understood. Herein, the interactions between the MAI-terminated MAPbI3 (110) surface and O2 molecules in the presence of excess electrons were studied by density functional theory calculations. Our results show that molecular O2 only weakly interact with the perovskite surface. However, a superoxide, which is formed from the reaction between a molecular oxygen and an excess electron, react readily with the perovskite surface by forming a Pb-O covalent bond with a surface Pb. By further introducing an excess electron, the superoxide is converted into a peroxide and the two O form two covalent bonds with the surface Pb in a side-on configuration. With the additional electron, the activation energy of the O-O bond dissociation is significantly reduced compared to that of the superoxide. During these processes, the local Pb-I octahedral structure disintegrates. The formation of the Pb-O covalent bonds can be the precursor of the PbO in the degradation products. An additional O2 or H2O molecule was found to only physisorb on the degraded surface with no chemical reaction. However, the physisorbed O2 can readily abstract an excess electron to form a superoxide and the resulting superoxide spontaneously forms an additional Pb-O bond with the surface Pb. Through this study, we identify a pathway for the formation of the PbO local structure and demonstrate the key roles of excess electrons and oxygens in MAPbI3 degradation.
机译:光激发,杂质和缺陷产生的过量电子在CH的降解中起重要作用 3 NH 3 3 (MAPbI 3 )在空气中钙钛矿[1-4]。但是,尚未完全了解此角色。在此,MAI终止的MAPbI之间的相互作用 3 (110)表面和O 2 通过密度泛函理论计算研究了存在过量电子的分子。我们的结果表明,分子O 2 仅与钙钛矿表面发生微弱的相互作用。然而,由分子氧与过量电子之间的反应形成的超氧化物通过与表面Pb形成Pb-O共价键而容易与钙钛矿表面反应。通过进一步引入过量的电子,超氧化物被转化为过氧化物,并且两个O以侧向配置与表面Pb形成两个共价键。与超氧化物相比,有了额外的电子,O-O键解离的活化能大大降低。在这些过程中,局部Pb-1八面体结构崩解。 Pb-O共价键的形成可以是降解产物中PbO的前体。一个额外的O 2 或H 2 发现O分子仅物理吸附在降解的表面上,而没有化学反应。但是,物理吸附的O 2 可以轻易地提取过量的电子以形成超氧化物,并且所得的超氧化物自发地与表面Pb形成一个额外的Pb-O键。通过这项研究,我们确定了PbO局部结构的形成途径,并证明了MAPbI中过量的电子和氧的关键作用 3 降解。

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