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High Versatility and Stability of Mechanochemically Synthesized Halide Perovskite Powders for Optoelectronic Devices

机译:用于光电器件的机械化学合成卤化物钙钛矿粉末的高通用性和稳定性

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We show that mechanochemically synthesized halide perovskite powders from a ball milling approach can be employed to fabricate a variety of lead halide perovskites with exceptional intrinsic stability. Our MAPbI3 powder exhibits higher thermal stability than conventionally processed thin films, without degradation after more than two and a half years of storage and only negligible degradation after heat treatment at 220 degrees C for 14 h. We further show facile recovery strategies of nonphase-pure powders by simple remilling or mild heat treatment. Moreover, we demonstrate the mechanochemical synthesis of phase-pure mixed perovskite powders, such as (Cs(0.05)FA(0.95)PbI(3))(0.85)(MAPbBr(3))(0.15), from either the individual metal and organic halides or from readily prepared ternary perovskites, regardless of the precursor phase purity. Adding potassium iodide (KI) to the milling process successfully passivated the powders. We also succeeded in preparing a precursor solution on the basis of the powders and obtained uniform thin films for integration into efficient perovskite solar cells from spin-coating this solution. We find the KI passivation remains in the devices, leading to improved performance and significantly reduced hysteresis. Our work thus demonstrates the potential of mechanochemically synthesized halide perovskite powders for long-time storage and upscaling, further paving the way toward commercialization of perovskite-based optoelectronic devices.
机译:我们表明,可以采用来自球磨方法的机械化学合成的卤化物钙钛矿粉末,用于制造各种铅卤化物钙酸盐,具有特殊的内在稳定性。我们的MAPBI3粉末表现出比常规加工的薄膜更高的热稳定性,在220℃下热处理后的220℃下的热处理后才能降解,而不会降解。我们进一步通过简单的测验或轻度热处理来显示非相纯粉末的容易回收策略。此外,我们证明了相纯混合钙钛矿粉末的机械化学合成,例如(0.05)FA(0.95)PBI(3))(0.85)(Mapbbr(3))(0.15),来自单个金属和无论前体相纯度如何,有机卤化物或易于制备的三元钙酸盐。将碘化钾(KI)加入研磨过程中成功钝化粉末。我们还在粉末的基础上成功地制备前体溶液,并获得均匀的薄膜,用于将有效的钙钛矿太阳能电池整合到旋涂该溶液中。我们发现KI钝化仍然存在于设备中,从而提高性能和显着降低的滞后。因此,我们的作品表明了机械化学合成的卤化物钙钛矿粉末用于长时间储存​​和升级的潜力,进一步铺平了跨越基于Perovskite的光电器件的商业化的方式。

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