Two Quasi-interfacial p-n Junctions Observed by a Dual-Irradiation System in Perovskite Solar Cells

Author:

Xu Jianwei1ORCID,Mohamed OMER2,Ye Tao3,Li XianQiang4,Ma Shaoyang5,Wu Dan5,Wei Lei5,Tang Xiaohong5,Ramakrishna Seeram6,Zhu Qiang7,Xiong Shanxing8,Vijila Chellappan9,Wang Xizu7ORCID

Affiliation:

1. Institute of Materials Research and Engineering

2. Department of Mechanical Engineering, National University of Singapore, Singapore 117576, Singapore

3. Key laboratory of Micro/Nano Systems of Aerospace, Ministry of Education, Northwestern Polytechnical University

4. Institute of Materials Research and Engineering (IMRE), Agency for Science

5. School of Electrical and Electronic Engineering, Nanyang Technological University

6. Department of Mechanical Engineering, National University of Singapore

7. IMRE, A*STAR

8. Collegue of Chemistry and Chemical Engineering, Xi’an University of Science and Technology

9. Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR),

Abstract

Abstract In general, perovskite solar cells (PSC) with a sensitized or thin-film architecture absorb light from a single side illumination, and carrier separation and transport only take place inside the active layer of the perovskite film. Herein, we first demonstrated a dual-irradiation PSC system in which light passes through both the fluorinated tin oxide (FTO) side and the Au electrode side, resulting in much faster interfacial charge carrier extraction and transportation than that in a single-irradiation system, in which light passes through from either the FTO or semitransparent Au electrode side. This dual-irradiation PSC system with a configuration of FTO/Cl-TiO2/Mp-TiO2/mixed perovskite/spiro-OMeTAD/Au/ITO can form two quasi-interfacial p-n junctions, which occur separately at the interfaces of TiO2/perovskite and perovskite/spiro-OMeTAD. When the PSC device was illuminated simultaneously from both the FTO and Au/ITO sides, the PSC achieved a total power conversion efficiency (PCE) as high as 20.1% under high light intensity (1.4 sun), which is higher than PCE (18.4%) of a single-irradiation system. The time of flight (TOF) photoconductivity, small perturbation transient photovoltaic (TPV), finite-difference time-domain (FDTD) optical simulations and dual illumination-side-dependent impedance spectroscopy (ISD-IS) were used to authenticate the presence of two quasi-interfacial p-n junctions in the PSC, creating more charge carriers than only one quasi p-njunction, and thus leading to a fast recombination process.

Publisher

Research Square Platform LLC

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