4.8 Article

Bifunctional interfacial engineering for piezo-phototronic enhanced photovoltaic performance of wearable perovskite solar cells

期刊

NANO ENERGY
卷 86, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.nanoen.2021.106127

关键词

Bifunctional interlayer; Interface passivation; Piezo-phototronic effect; Energy band alignment

资金

  1. Research Grants Council of Hong Kong, Hong Kong [G-CityU101/15]

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The research converts the surface of zinc oxide to ZnS, forming a bifunctional interfacial layer. This new design improves the power conversion efficiency of flexible perovskite solar cells and enhances the stability of the devices. By modulating the energy band structure, efficient control of electron transport is achieved.
The piezo-phototronic effect can effectively modulate the energy band structure at the interface of p-n or metalsemiconductor junction, manipulating the separation, transport, and recombination of photoinduced charges. While zinc oxide (ZnO) is a good electron transporting layer (ETL), its Lewis's basic nature and presence of surface defects lead to deprotonation of perovskite, resulting in severe degradation of perovskite solar cells (PSC). Herein, the ZnO surface is converted to ZnS, which acts as a bifunctional interfacial layer, passivating the ZnO/perovskite interface by reducing the hydroxyl (-OH) group on the ZnO surface for improved stability and forming strong coordination with Pb2+ of perovskite (Zn-S-Pb pathway) and thus adjusting the energy level for efficient electron transport. Consequently, the power conversion efficiency (PCE) of the flexible PSC is remarkably improved from 12.94% to 14.68% under static external strain of 1.5%, ascribed to the strain-induced piezo-polarization charges, which modulate the energy band structure of ZnS/ZnO and ZnS/perovskite interfaces. As a result, spatial separation of photoinduced carriers is facilitated, reducing recombination probability. The energy band diagram is proposed to elucidate the mechanism. This strategy enables effective utilization of the piezo-phototronic effect while enhancing device stability.

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