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CH_3NH_3Pbl_3 thin films prepared by hot-casting technique in the air: growth mechanism, trap states and relating solar cells

机译:CH_3NH_3PBL_3通过热铸造技术在空中制备的薄膜:生长机制,陷阱状态和与太阳能电池相关

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摘要

Tetragonal CH3NH3PbI3 perovskite thin films with large crystallite sizes were successfully fabricated under atmospheric air using a one-step hot-casting technique. The casting temperature governed structural and optical properties of the prepared films. The energy gaps of the hot-casted films changed with changing casting temperature due to the variation of Urbach energy. The hot-casted perovskite thin films had superior structural stability to that of the two-step method films. However, the hot-casted perovskite films contained trap states as suggested by additional emissions other than bimolecular recombination in photoluminescence spectra. The origins of these trap states were believed to be attributed to the presence of iodine vacancies (V-I), iodine interstitial sites (I-i) and methylammonium ion vacancies (V-MA) in the prepared films. The fabricated perovskite solar cells showed that at low casting temperatures the power conversion efficiencies were relatively higher than the higher ones, this was attributed to their lower non-radiative recombination activities. (C) 2019 The Japan Society of Applied Physics
机译:使用一步热铸造技术在大气空气下成功制造具有大型微晶尺寸的四方CH3NH3PBI3钙钛矿薄膜。铸造温度治理制备薄膜的结构和光学性质。由于URBACH能量的变化,热浇铸薄膜的能量间隙随着铸造温度的变化而变化。热浇注的钙钛矿薄膜对两步法薄膜的结构稳定性卓越。然而,热浇注的钙钛矿薄膜含有以光致发光光谱中的额外排放的额外排放来含有陷阱状态。这些捕集状态的起源被认为归因于制备薄膜中存在碘空位(V-1),碘间隙位点(I-I)和甲基离子空位(V-MA)。制造的钙钛矿太阳能电池表明,在低铸造温度下,功率转换效率比较高,这归因于它们较低的非辐射重组活性。 (c)2019年日本应用物理学会

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    《Japanese journal of applied physics》 |2019年第2019期|SIID07.1-SIID07.9|共9页
  • 作者单位

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand;

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand;

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand|Khon Kaen Univ Integrated Nanotechnol Res Ctr Khon Kaen 40002 Thailand|Chiang Mai Univ Thailand Ctr Excellence Phys POB 70 Chiang Mai 50202 Thailand|Khon Kaen Univ Inst Nanomat Res & Innovat Energy IN RIE Res Network NANOTEC KKU RNN Khon Kaen 40002 Thailand;

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand|Khon Kaen Univ Integrated Nanotechnol Res Ctr Khon Kaen 40002 Thailand|Chiang Mai Univ Thailand Ctr Excellence Phys POB 70 Chiang Mai 50202 Thailand;

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand|Khon Kaen Univ Integrated Nanotechnol Res Ctr Khon Kaen 40002 Thailand|Chiang Mai Univ Thailand Ctr Excellence Phys POB 70 Chiang Mai 50202 Thailand|Khon Kaen Univ Inst Nanomat Res & Innovat Energy IN RIE Res Network NANOTEC KKU RNN Khon Kaen 40002 Thailand;

    Khon Kaen Univ Dept Phys Fac Sci Khon Kaen 40002 Thailand|Khon Kaen Univ Integrated Nanotechnol Res Ctr Khon Kaen 40002 Thailand|Chiang Mai Univ Thailand Ctr Excellence Phys POB 70 Chiang Mai 50202 Thailand|Khon Kaen Univ Inst Nanomat Res & Innovat Energy IN RIE Res Network NANOTEC KKU RNN Khon Kaen 40002 Thailand;

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