4.8 Article

Hybrid 3D Nanostructure-Based Hole Transport Layer for Highly Efficient Inverted Perovskite Solar Cells

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 14, 页码 16611-16619

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c21064

关键词

metal oxides; nanostructure; hole transport layer; alignment band structure; perovskite solar cells

资金

  1. University Grant Council of the University of Hong Kong [201811159147]
  2. University Grant Council of the University of Hong Kong (Research Equipment Fund)
  3. Research Grants Council (RGC) of Hong Kong Special Administrative Region, China [17200518, 17201819, 17211220, C7035-20G]
  4. Environment Conservation Fund of ECF [64/2018]

向作者/读者索取更多资源

This study demonstrates a new hybrid three-dimensional nanostructure system as an efficient hole transport layer in solar cells, achieving nearly 20% power conversion efficiency. By integrating high-conductive chromium-doped CuGaO2 nanoplates into ultrasmall NiOx nanoparticles, the system exhibits advantages such as smooth surface, remarkable charge collection efficiency, and energy level alignment with the perovskite layer.
In this study, we demonstrate a new hybrid three-dimensional (3D) nanostructure system as an efficient hole transport layer (HTL) by a facile design of a low-temperature solution process. It is realized by integrating high-conductive chromium-doped CuGaO2 nanoplates synthesized with choline chloride (denoted as Cr/CuGaO2-CC) into ultrasmall NiOx nanoparticles. First, we propose to incorporate a Cr-doped strategy under hydrothermal synthesis conditions together with controllable intermediates and surfactants' assistance to synthesize fine-sized Cr/CuGaO2-CC nanoplates. Subsequently, these two-dimensional (2D) nanoplates serve as the expressway for improving hole transportation/extraction properties. Meanwhile, the ultrasmall-sized NiOx nanoparticles are employed to modify the surface for achieving unique surface properties. The HTL formed from the designed hybrid 3D-nanostructured system exhibits the advantages of smooth and full-covered surface, remarkable charge collection efficiency, energy level alignment between the electrode and perovskite layer, and the promotion of perovskite crystal growth. Consequently, nearly 20% of power conversion efficiency with negligible hysteresis is achieved in inverted perovskite solar cells (PSCs). This work not only demonstrates the potential applications of a 3D-nanostructured Cr/CuGaO2-CC/NiOx hybrid HTL in PSCs but also provides a fundamental insight into the design of hybrid material systems by manipulating electric behavior and morphology structure for achieving high-performance photovoltaic devices.

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