Investigations of Carrier Transport Mechanisms in Perovskite Solar Cells with Different Types of ZnO Layer

Author:

Puliparambil Thilakan Anusha1ORCID,Hsu Wei-Hsuan2,Yang You-Wei2,Wang Ying-Ting2,Yabushita Atshushi3,Luo Chih-Wei34567ORCID,Chen Mei-Hsin2ORCID

Affiliation:

1. Department of Physics School of Advanced Sciences Vellore Institute of Technology Vellore 632014 India

2. Department of Electro-Optical Engineering National Taipei University of Technology Taipei 10634 Taiwan

3. Department of Electrophysics National Yang Ming Chiao Tung University Hsinchu 30010 Taiwan

4. Institute of Physics and Center for Emergent Functional Matter Science National Yang Ming Chiao Tung University Hsinchu 30010 Taiwan

5. National Synchrotron Radiation Research Center Hsinchu 30076 Taiwan

6. Taiwan Consortium of Emergent Crystalline Materials (TCECM) National Science and Technology Council Taipei 10601 Taiwan

7. Department of Physics University of Washington Seattle WA 98195 USA

Abstract

The interfacial mechanisms of carrier transport in perovskite solar cells with different types of zinc oxide (hydrothermal solution method (ZnOHT) and sol–gel method (ZnOSG)) are investigated. Power conversion efficiencies of the devices with ZnOHT and ZnOSG layers are 18.66% and 13.39%, respectively, which are significantly varied by the rates of photoelectron injection and electron–hole recombination. The space‐charge‐limited current and electrochemical impedance measurements both show that the device utilizing ZnOHT layer exhibits fewer internal defects compared to that with ZnOSG layer. Via transient absorption spectroscopy, faster injection of photoelectrons from the active layer to the transport layer occurs at ≈3.8 ps in the devices with ZnOHT layer, which is half of the value observed in devices with ZnOSG layer and benefits the device performance. Moreover, a faster electron–hole recombination in devices with ZnOSG degrades device performance due to the trap states in high‐defect‐density devices. Both device performances stably maintain a level higher than 98% of the initial value after over 600 h without encapsulation in glove box. Finally, the structural and electronic properties of charge transport layer can be controlled by the methods of preparation and ZnOHT shows great promise in enhancing perovskite solar cell efficiency with relatively low‐temperature process.

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Energy Engineering and Power Technology,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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