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    Author
    Amassian, Aram (2)
    Barrit, Dounya (1)Bera, Ashok (1)Ding, Jianning (1)Fan, Yuanyuan (1)View MoreDepartmentKAUST Solar Center (KSC) (2)
    Materials Science and Engineering Program (2)
    Physical Sciences and Engineering (PSE) Division (2)
    Office of the VP (1)JournalACS Applied Materials & Interfaces (1)Nano letters (1)Publisher
    American Chemical Society (ACS) (2)
    Subject
    Perovskite solar cell (2)
    2D/3D heterojunction (1)charge recombination (1)charge transfer (1)high performance (1)View MoreTypeArticle (2)Year (Issue Date)2019 (1)2017 (1)Item AvailabilityMetadata Only (1)Open Access (1)

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    Effects of High Temperature and Thermal Cycling on the Performance of Perovskite Solar Cells: Acceleration of Charge Recombination and Deterioration of Charge Extraction

    Sheikh, Arif D.; Munir, Rahim; Haque, Mohammed; Bera, Ashok; Hu, Weijin; Shaikh, Parvez Abdul Ajij; Amassian, Aram; Wu, Tao (ACS Applied Materials & Interfaces, American Chemical Society (ACS), 2017-09-18) [Article]
    In this work, we investigated the effects of high operating temperature and thermal cycling on the photovoltaic performance of perovskite solar cells (PSCs) with a typical mesostructured (m)-TiO2-CH3NH3PbI3-xClx-spiro-OMeTAD architecture. After carrying out temperature-dependent grazing incidence wide-angle X-ray scattering (GIWAXS), in-situ X-ray diffraction (XRD) and optical absorption experiments, thermal durability of PSCs was tested by subjecting the devices to repetitive heating to 70 °C and cooling to room temperature (20 °C). An unexpected regenerative effect was observed after the first thermal cycle; the average power conversion efficiency (PCE) increased by approximately 10 % in reference to the as-prepared device. This increase of PCE was attributed to the heating-induced improvement of crystallinity and p-doping in the hole-transporter, Spiro-OMeTAD, which promotes the efficient extraction of photo-generated carriers. However, further thermal cycles produced a detrimental effect on the photovoltaic performance of PSCs with short-circuit current and fill factor degrading faster than the open-circuit voltage. Similarly, the photovoltaic performance of PSCs degraded at high operation temperatures; both short-circuit current and open-circuit voltage decreased with increasing temperature, but the temperature-dependent trend of fill factor was opposite. Our impedance spectroscopy analysis revealed a monotonous increase of charge transfer resistance and a concurrent decrease of charge recombination resistance with increasing temperature, indicating high recombination of charge carriers. Our results revealed that both thermal cycling and high temperatures produce irreversible detrimental effects on the PSC performance due to the deteriorated interfacial photo-carrier extraction. The present findings suggest that development of robust charge transporters and proper interface engineering are critical for the deployment of perovskite photovoltaics in harsh thermal environments.
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    Interfacial Engineering at the 2D/3D Heterojunction for High-Performance Perovskite Solar Cells.

    Niu, Tianqi; Lu, Jing; Jia, Xuguang; Xu, Zhuo; Tang, Ming-Chun; Barrit, Dounya; Yuan, Ningyi; Ding, Jianning; Zhang, Xu; Fan, Yuanyuan; Luo, Tao; Zhang, Yalan; Smilgies, Detlef-M.; Liu, Zhike; Amassian, Aram; Jin, Shengye; Zhao, Kui; Liu, Shengzhong (Frank) (Nano letters, American Chemical Society (ACS), 2019-09-11) [Article]
    Perovskite solar cells based on two-dimensional/three-dimensional (2D/3D) hierarchical structure have attracted significant attention in recent years due to their promising photovoltaic performance and stability. However, obtaining a detailed understanding of interfacial mechanism at the 2D/3D heterojunction, for example, the ligand-chemistry-dependent nature of the 2D/3D heterojunction and its influence on charge collection and the final photovoltaic outcome, is not yet fully developed. Here we demonstrate the underlying 3D phase templates growth of quantum wells (QWs) within a 2D capping layer, which is further influenced by the fluorination of spacers and compositional engineering in terms of thickness distribution and orientation. Better QW alignment and faster dynamics of charge transfer at the 2D/3D heterojunction result in higher charge mobility and lower charge recombination loss, largely explaining the significant improvements in charge collection and open-circuit voltage (VOC) in complete solar cells. As a result, 2D/3D solar cells with a power-conversion efficiency of 21.15% were achieved, significantly higher than the 3D counterpart (19.02%). This work provides key missing information on how interfacial engineering influences the desirable electronic properties of the 2D/3D hierarchical films and device performance via ligand chemistry and compositional engineering in the QW layer.
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