Literature DB >> 26693663

Recent Advances in the Inverted Planar Structure of Perovskite Solar Cells.

Lei Meng1, Jingbi You1,2, Tzung-Fang Guo3, Yang Yang1.   

Abstract

Inorganic-organic hybrid perovskite solar cells research could be traced back to 2009, and initially showed 3.8% efficiency. After 6 years of efforts, the efficiency has been pushed to 20.1%. The pace of development was much faster than that of any type of solar cell technology. In addition to high efficiency, the device fabrication is a low-cost solution process. Due to these advantages, a large number of scientists have been immersed into this promising area. In the past 6 years, much of the research on perovskite solar cells has been focused on planar and mesoporous device structures employing an n-type TiO2 layer as the bottom electron transport layer. These architectures have achieved champion device efficiencies. However, they still possess unwanted features. Mesoporous structures require a high temperature (>450 °C) sintering process for the TiO2 scaffold, which will increase the cost and also not be compatible with flexible substrates. While the planar structures based on TiO2 (regular structure) usually suffer from a large degree of J-V hysteresis. Recently, another emerging structure, referred to as an "inverted" planar device structure (i.e., p-i-n), uses p-type and n-type materials as bottom and top charge transport layers, respectively. This structure derived from organic solar cells, and the charge transport layers used in organic photovoltaics were successfully transferred into perovskite solar cells. The p-i-n structure of perovskite solar cells has shown efficiencies as high as 18%, lower temperature processing, flexibility, and, furthermore, negligible J-V hysteresis effects. In this Account, we will provide a comprehensive comparison of the mesoporous and planar structures, and also the regular and inverted of planar structures. Later, we will focus the discussion on the development of the inverted planar structure of perovskite solar cells, including film growth, band alignment, stability, and hysteresis. In the film growth part, several methods for obtaining high quality perovskite films are reviewed. In the interface engineering parts, the effect of hole transport layer on subsequent perovskite film growth and their interface band alignment, and also the effect of electron transport layers on charge transport and interface contact will be discussed. As concerns stability, the role of charge transport layers especially the top electron transport layer in the devices stability will be concluded. In the hysteresis part, possible reasons for hysteresis free in inverted planar structure are provided. At the end of this Account, future development and possible solutions to the remaining challenges facing the commercialization of perovskite solar cells are discussed.

Entities:  

Year:  2015        PMID: 26693663     DOI: 10.1021/acs.accounts.5b00404

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  33 in total

1.  Impact of fullerene derivative isomeric purity on the performance of inverted planar perovskite solar cells.

Authors:  Edison Castro; Gerardo Zavala; Sairaman Seetharaman; Francis D'Souza; Luis Echegoyen
Journal:  J Mater Chem A Mater       Date:  2017-08-23

2.  Attributes of High-Performance Electron Transport Layers for Perovskite Solar Cells on Flexible PET versus on Glass.

Authors:  Marwa Dkhili; Giulia Lucarelli; Francesca De Rossi; Babak Taheri; Khadija Hammedi; Hatem Ezzaouia; Francesca Brunetti; Thomas M Brown
Journal:  ACS Appl Energy Mater       Date:  2022-04-06

3.  Effects of Annealing Conditions on Mixed Lead Halide Perovskite Solar Cells and Their Thermal Stability Investigation.

Authors:  Haifeng Yang; Jincheng Zhang; Chunfu Zhang; Jingjing Chang; Zhenhua Lin; Dazheng Chen; He Xi; Yue Hao
Journal:  Materials (Basel)       Date:  2017-07-21       Impact factor: 3.623

4.  Electrodeposition of SnO2 on FTO and its Application in Planar Heterojunction Perovskite Solar Cells as an Electron Transport Layer.

Authors:  Yohan Ko; Yeong Rim Kim; Haneol Jang; Chanyong Lee; Man Gu Kang; Yongseok Jun
Journal:  Nanoscale Res Lett       Date:  2017-08-16       Impact factor: 4.703

5.  Ultra-bright and highly efficient inorganic based perovskite light-emitting diodes.

Authors:  Liuqi Zhang; Xiaolei Yang; Qi Jiang; Pengyang Wang; Zhigang Yin; Xingwang Zhang; Hairen Tan; Yang Michael Yang; Mingyang Wei; Brandon R Sutherland; Edward H Sargent; Jingbi You
Journal:  Nat Commun       Date:  2017-06-07       Impact factor: 14.919

6.  High-Performance Regular Perovskite Solar Cells Employing Low-Cost Poly(ethylenedioxythiophene) as a Hole-Transporting Material.

Authors:  Xiaoqing Jiang; Ze Yu; Yuchen Zhang; Jianbo Lai; Jiajia Li; Gagik G Gurzadyan; Xichuan Yang; Licheng Sun
Journal:  Sci Rep       Date:  2017-02-13       Impact factor: 4.379

7.  Chemical Stabilization of Perovskite Solar Cells with Functional Fulleropyrrolidines.

Authors:  Yao Liu; Zachariah A Page; Dongming Zhou; Volodimyr V Duzhko; Kevin R Kittilstved; Todd Emrick; Thomas P Russell
Journal:  ACS Cent Sci       Date:  2017-12-27       Impact factor: 14.553

8.  Fluoranthene-based dopant-free hole transporting materials for efficient perovskite solar cells.

Authors:  Xianglang Sun; Qifan Xue; Zonglong Zhu; Qi Xiao; Kui Jiang; Hin-Lap Yip; He Yan; Zhong'an Li
Journal:  Chem Sci       Date:  2018-02-02       Impact factor: 9.825

9.  High efficiency planar-type perovskite solar cells with negligible hysteresis using EDTA-complexed SnO2.

Authors:  Dong Yang; Ruixia Yang; Kai Wang; Congcong Wu; Xuejie Zhu; Jiangshan Feng; Xiaodong Ren; Guojia Fang; Shashank Priya; Shengzhong Frank Liu
Journal:  Nat Commun       Date:  2018-08-13       Impact factor: 14.919

10.  All Sequential Dip-Coating Processed Perovskite Layers from an Aqueous Lead Precursor for High Efficiency Perovskite Solar Cells.

Authors:  Muhammad Adnan; Jae Kwan Lee
Journal:  Sci Rep       Date:  2018-02-01       Impact factor: 4.379

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