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Halide-, Hybrid-, and Perovskite-Functionalized Light Absorbing Quantum Materials of p-i-n Heterojunction Solar Cells

机译:卤化物,杂交和钙钛矿官能化光吸收P-I-N异质结太阳能电池的光吸收量子材料

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The p-i-n quantum dot (QD) solar cells were fabricated through the single-step deposition of both of its p- type and light absorbing quantum layers. The hole transport and light absorbing layers of these devices were made by the p- and n-type PbS QDs, which were functionalized with mercaptopropionic acid and different halide, hybrid, and perovskite ligands, respectively. Fabrication of such p-i-n devices by the single-step deposition of pre-exchanged colloidal QDs had not been fully investigated so far because of the low progression of ligand exchange processes, weak colloidal stability of pre-exchanged QDs in desired solvents, and remaining of the ligand exchange products along with particles. However, we showed that the type of ligand complexes, amino acid products of ligand exchange, and protic solvents are highly effective for increasing the ligand exchange progression and preparation of high colloidal stability QDs with superior photoluminescence properties. As well, the surface chemistry investigations by the means of Fourier transform infrared, nuclear magnetic resonance, X-ray photoelectron spectroscopy, X-ray diffraction, inductively coupled plasma optical emission spectrometry, carbon-hydrogen-nitrogen-sulfur elemental analysis, zeta potential, and high-resolution transmission electron microscopy were led to the presentation of new concepts about the theoretical and experimental ligand weight percentages, the mechanisms of solution-phase ligand exchange processes, and formation of ligands adlayer on the (111) facets of QDs. The pre-exchanged colloidal QDs showed very good desirability for the single-step deposition of dense, defects-free, and smooth QD layers. Regarding that, the p-i-n solar cells were successfully fabricated by the single-step deposition of both of the QD layers. Especially, the highest power conversion efficiency value of 6.40% was recorded for the devices in which the light absorbing layer was prepared by the composite-like QD-perovskite structures.
机译:通过其P型和光吸收量子层的单步沉积来制造P-I-N量子点(QD)太阳能电池。这些装置的空穴传输和光吸收层由P-and N型PBS QD制成,其分别用巯基丙酸和不同的卤化物,杂种和钙钛矿配体官能化。通过迄今为止,由于配体交换过程的低进展,所需溶剂预先交换QDS的胶体稳定性弱胶体稳定性,因此迄今为止,通过单步沉积的制造通过预先交换的胶体QD的制造尚未完全研究。配体交换产品以及颗粒。然而,我们表明,配体复合物的类型,配体交换的氨基酸产物和质子溶剂对增加配体交换进展和具有优异的光致发光性能的高胶体稳定性QD的制备非常有效。同样,通过傅立叶变换红外线,核磁共振,X射线光电子能谱,X射线衍射,电感耦合等离子体光发射光谱法,碳 - 氮 - 硫磺元素分析,Zeta电位的方法研究。和高分辨率透射电子显微镜导致了关于理论和实验配体重量百分比的新概念,溶液相配体交换过程的机制,以及在QDS(111)平面上的配体adlayer的形成。预先交换的胶体QDS表明,对无致密,缺陷的单步沉积和平滑的QD层的单步沉积表示非常好。关于此,通过QD层的单步沉积成功制造P-I-N太阳能电池。特别是,记录最高功率转换效率值为6.40%的装置,用于通过复合QD-Perovskite结构制备光吸收层的装置。

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