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Solution-Processed Lithium-Doped ZnO Electron Transport Layer for Efficient Triple Cation (Rb, MA, FA) Perovskite Solar Cells
Journal article   Peer reviewed

Solution-Processed Lithium-Doped ZnO Electron Transport Layer for Efficient Triple Cation (Rb, MA, FA) Perovskite Solar Cells

Md Arafat Mahmud, Naveen Elumalai, Mushfika Baishakhi Upama, Dian Wang, Arman Mahboubi Soufiani, Matthew Wright, Cheng Xu, Faiazul Haque and Ashraf Uddin
ACS Applied Materials and Interfaces, Vol.9(39), pp.33841-33854
2017
PMID: 28910073

Abstract

interstital li doping trap state passivation ZnO ETL perovskite solar cell electron injection barrier electrode polarization
The current work reports the lithium (Li) doping of a low-temperature processed zinc oxide (ZnO) electron transport layer (ETL) for highly efficient, triple-cation-based MA(0.57)FA(0.38)Rb(0.05)PbI(3) (MA: methylammonium, FA: formamidinium, Rb: rubidium) perovskite solar cells (PSCs). Lithium intercalation in the host ZnO lattice structure is dominated by interstitial doping phenomena, which passivates the intrinsic defects in ZnO film. In addition, interstitial Li doping also downshifts the Fermi energy position of Li-doped ETL by 30-meV, which contributes to the reduction of the electron injection barrier from the photoactive perovskite layer. Compared to the pristine ZnO, the power conversion efficiency (PCE) of the PSCs incorporating lithium-doped ZriO (Li-doped) is raised from 14.07 to 16.14%. The superior performance is attributed to the reduced current leakage, enhanced charge extraction characteristics,, and mitigated trap-assisted recombination phenomena in Li-doped devices, thoroughly investigated by means of electrochemical impedance spectroscopy (EIS) analysis. Li-dopecl PSCs also exhibit lower photocurrent hysteresis than ZnO devices, which is investigated with regard to the electrode, polarization phenomena of the fabricated devices.

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Web Of Science research areas
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
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