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Terahertz Conductivity within Colloidal CsPbBr3 Perovskite Nanocrystals: Remarkably High Carrier Mobilities and Large Diffusion Lengths

机译:胶体CsPbBr3钙钛矿纳米晶体中的太赫兹电导率:极高的载流子迁移率和大的扩散长度

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摘要

Colloidal CsPbBr3 perovskite nanocrystals (NCs) have emerged as an excellent light emitting material in last one year. Using time domain and time-resolved THz spectroscopy and density functional theory based calculations, we establish 3-fold free carrier recombination mechanism, namely, nonradiative Auger, bimolecular electron hole recombination, and inefficient trap-assisted recombination in 11 nm sized colloidal CsPbBr3 NCs. Our results confirm a negligible influence of surface defects in trapping charge carriers, which in turn results into desirable intrinsic transport properties, from the perspective of device applications, such as remarkably high carrier mobility (similar to 4500 cm(2) V-1 s(-1)), large diffusion length (>9.2 mu m), and high luminescence quantum yield (80%). Despite being solution processed and possessing a large surface to volume ratio, this combination of high carrier mobility and diffusion length, along with nearly ideal photoluminescence quantum yield, is unique compared to any other colloidal quantum dot system.
机译:过去一年,胶态CsPbBr3钙钛矿纳米晶体(NCs)成为一种出色的发光材料。使用时域和时间分辨THz光谱以及基于密度泛函理论的计算方法,我们建立了11倍胶体CsPbBr3 NCs中3倍自由载流子复合机制,即无辐射俄歇,双分子电子空穴复合和低效陷阱辅助复合。我们的结果证实,从器件应用的角度来看,在捕获电荷载流子时表面缺陷的影响微不足道,这反过来又导致了理想的固有传输特性,例如载流子迁移率极高(类似于4500 cm(2)V-1 s( -1)),大的扩散长度(> 9.2μm)和高的发光量子产率(80%)。尽管经过溶液处理并具有较大的表面积与体积之比,但与其他任何胶体量子点系统相比,高载流子迁移率和扩散长度以及近乎理想的光致发光量子产率的这种结合是独特的。

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