Yu Xueping, Liu Zhongzhe, Yang Xiya, Wang Yudi, Zhang Jihua, Duan Jialong, Liu Liming, Tang Qunwei
College of Information Science and Technology, Jinan University, Guangzhou 510632, PR China.
State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science & Technology of China, Chengdu, Sichuan 610054, PR China.
ACS Appl Mater Interfaces. 2021 Jun 9;13(22):26196-26203. doi: 10.1021/acsami.1c05796. Epub 2021 May 28.
Triboelectric generators (TENGs) have been extensively studied as a new energy for low cost and the universally applicable prospect. Meanwhile, perovskites have been applied in TENG and show a good performance in view of high carrier mobility, long life and dielectric properties. The asymmetry structure of the orthogonal phase CsPbBr perovskite endows it with ferroelectric property and induces the misalignment of the positive and negative charge centers. Herein, the surface energy of halogen doped inorganic CsPbX (X = Cl, Br) perovskites are theoretically investigated by density functional theory (DFT) calculation, the crystal polarizability of pristine CsPbBr is improved from 0.47 Ry a.u. to 0.52 Ry a.u. (CsPbCl), indicating the polarizability of CsPbCl is higher than CsPbBr. In addition, the build-in electric field () of perovskite materials can be enhanced by the spontaneous polarization and the aligned dipoles in the could further improve the tribo-electrostatic electric field by retaining more triboelectric surface charges. In the end, CsPbCl achieved a power of 3.06 W m compared to the power of 1.34 W m of CsPbBr. This work focuses on the regulation of crystal planes using spontaneous polarization of perovskite toward achieving a high built-in electric field for enhancing triboelectric surface charge density.
摩擦电发电机(TENGs)作为一种低成本且具有广泛应用前景的新能源,已得到广泛研究。同时,钙钛矿已应用于TENG,鉴于其高载流子迁移率、长寿命和介电性能,表现出良好的性能。正交相CsPbBr钙钛矿的不对称结构赋予其铁电性能,并导致正负电荷中心的错位。在此,通过密度泛函理论(DFT)计算从理论上研究了卤素掺杂无机CsPbX(X = Cl,Br)钙钛矿的表面能,原始CsPbBr的晶体极化率从0.47 Ry a.u.提高到0.52 Ry a.u.(CsPbCl),表明CsPbCl的极化率高于CsPbBr。此外,钙钛矿材料的内建电场()可通过自发极化得到增强,并且排列的偶极子在 中可通过保留更多的摩擦电表面电荷进一步改善摩擦静电场。最后,CsPbCl实现了3.06 W m的功率,而CsPbBr的功率为1.34 W m。这项工作专注于利用钙钛矿的自发极化来调控晶面,以实现高内建电场,从而提高摩擦电表面电荷密度。