| Literature DB >> 35540162 |
Caifeng Zhang1,2,3, Guangmei Zhai1,2,3, Yong Zhang1,3,4, Wenhui Gao1,3, Zhimeng Shao1,3, Lulu Zheng1,3, Fuhong Mei1,3, Hua Zhang1,3, Yongzhen Yang1,3, Xuemin Li1,3, Xuguang Liu1,3,4, Bingshe Xu1,3.
Abstract
The instability of perovskite films is a major issue for perovskite solar cells based on ZnO electron transport layers (ETLs). Here, ZnO nanoparticle (NP)- and ZnO sol-gel layers capped with low-temperature processed TiO2, namely ZnO/TiO2 bilayered films, have been successfully employed as ETLs in highly efficient MAPbI3-based perovskite solar cells. It is demonstrated that these ZnO/TiO2 bilayered ETLs are not only capable of enhancing photovoltaic performance, but also capable of improving device stability. The best device based on the ZnO/TiO2 bilayered ETL exhibits an efficiency of ∼15% under standard test conditions and can retain nearly 100% of its initial efficiency after 30 days of atmosphere storage, showing much higher device performance and stability compared to those devices based on ZnO single-layer ETLs. Moreover, it is found that perovskite films and devices prepared on the single ZnO sol-gel ETLs are much superior to those deposited on the single ZnO NP-ETLs in both stability and performance, which can be ascribed to fewer surface hydroxyl groups and much smoother surface morphology of the ZnO sol-gel films. The results pave the way for ZnO to be used as an effective ETL of low-temperature processed, efficient and stable PSCs compatible with flexible substrates. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35540162 PMCID: PMC9081582 DOI: 10.1039/c8ra03162b
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Transmittance spectra (a and d) and SEM images of (b) a ZnO-NP film, (c) a ZnO NPs/TiO2 bilayered film, (e) a ZnO sol–gel film, and (f) a ZnO sol–gel/TiO2 bilayered film.
Fig. 2The stability comparison between perovskite films deposited (a) on a ZnO-NP film and a ZnO NPs/TiO2 bilayered film, (b) on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film upon thermal treatments.
Fig. 3XPS spectra of (a) a ZnO-NP film, (b) a ZnO NPs/TiO2 bilayered film, (c) a ZnO sol–gel film, and (d) a ZnO sol–gel/TiO2 bilayered film.
Fig. 4Two and three dimensional AFM images of (a) a ZnO-NP film, (b) a ZnO sol–gel film.
Fig. 5SEM images of perovskite films deposited on (a) a ZnO-NP film, (b) a ZnO NPs/TiO2 bilayered film, (c) a ZnO sol–gel film, and (d) a ZnO sol–gel/TiO2 bilayered film, respectively.
Fig. 6(a) Schematic architecture of PSCs fabricated in the work; (b) schematic energy band diagram of PSCs fabricated in the work; typical J–V characteristics of perovskite solar cells fabricated (c) on a ZnO-NP film and a ZnO NPs/TiO2 bilayered film; (d) on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film.
Statistics of photovoltaic parameters, series resistance (Rs) and shunt resistance (Rsh) of perovskite solar cells fabricated on ZnO-NP films, ZnO NPs/TiO2 bilayered films, ZnO sol–gel films and ZnO sol–gel/TiO2 bilayered films
| ETL |
|
| FF (%) | PCE (%) |
|
|
|---|---|---|---|---|---|---|
| ZnO NPs | 0.94 ± 0.03 | 9.40 ± 0.68 | 35.46 ± 2.86 | 3.12 ± 0.15 | 2086 ± 172 | 10 948 ± 1333 |
| ZnO NPs/TiO2 | 1.06 ± 0.007 | 18.89 ± 0.37 | 71.95 ± 2.63 | 14.44 ± 0.43 | 263 ± 15 | 53 427 ± 5253 |
| ZnO sol–gel | 1.06 ± 0.01 | 15.53 ± 0.22 | 51.50 ± 0.98 | 8.48 ± 0.27 | 679 ± 41 | 18 807 ± 1452 |
| ZnO sol–gel/TiO2 | 1.06 ± 0.008 | 18.04 ± 0.13 | 74.31 ± 0.32 | 14.26 ± 0.16 | 250 ± 15 | 49 756 ± 4490 |
Fig. 7XRD patterns of perovskite films deposited (a) on a ZnO-NP film and a ZnO NPs/TiO2 bilayered film; (b) on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film.
Fig. 8Absorbance spectra of perovskite films deposited (a) on a ZnO NP-film and a ZnO NPs/TiO2 bilayered film; (b) on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film.
Fig. 9Time resolved photoluminescence spectra of perovskite films deposited on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film. Inset: the resulting decay lifetimes (τi) and decay amplitudes (Ai).
Fig. 10Durability of perovskite solar cells fabricated (a) on a ZnO NP-film and a ZnO NPs/TiO2 bilayered film; (b) on a ZnO sol–gel film and a ZnO sol–gel/TiO2 bilayered film in air atmosphere (RH∼20%).