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首页> 外文期刊>Applied Surface Science >Solution phase surface functionalization of PbS nanoparticles with organic ligands for single-step deposition of p-type layer of quantum dot solar cells
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Solution phase surface functionalization of PbS nanoparticles with organic ligands for single-step deposition of p-type layer of quantum dot solar cells

机译:PbS纳米粒子与有机配体的溶液相表面功能化,用于量子点太阳能电池p型层的一步沉积

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摘要

Semiconducting p-type layers of heterojunction quantum dot solar cells (QDSCs) are often prepared by the layer-by-layer (LBL) method. Due to the intermittent nature of quantum dot (QD) deposition, solid-state ligand exchange and washing steps, the LBL process typically involves a high waste of materials and a relatively low surface quality of the applied layers. To introduce a simplified method for deposition of QD layer, this paper investigates the preparation of pre-exchanged QD inks for the single-step deposition of QD layers of QDSCs. Various pre-exchanged QD inks were prepared through the solution phase exchange of oleate ligands with organic ligands of different functional groups, chain lengths and chain structures. Oxidation and colloidal stability of the prepared inks during long-time air exposure storage were investigated by the means of UV-Vis-NIR spectroscopy, photoluminescence (PL) and zeta potential measurements. Transmission electron microscopy (TEM), X-ray diffraction (XRD), Fourier transform infrared (FT-IR), nuclear magnetic resonance (NMR) and combustion CHNS analyses were used to study the surface chemistry of the exchanged QDs and the mechanism of ligand exchange. Various inks of pre-exchanged QDs were deposited on different substrates in a single-step method. The best surface topography and the lowest oxidation rate were achieved for layers prepared by the single-step deposition of 3-mercaptopropionic acid (MPA)-capped QD ink. The QDSCs fabricated by such layers had higher efficiency than those fabricated by the common LBL method. Furthermore, annealing the MPA-capped QD layer increases the power conversion efficiency of the ink based solar cells up to 3.22% under simulated AM1.5 solar illuminations.
机译:异质结量子点太阳能电池(QDSC)的半导体p型层通常通过逐层(LBL)方法制备。由于量子点(QD)沉积,固态配体交换和洗涤步骤的间歇性,LBL工艺通常会浪费大量材料,并且所施加的层的表面质量相对较低。为了介绍一种简化的QD层沉积方法,本文研究了用于QDSC的QD层单步沉积的预交换QD油墨的制备方法。通过油酸酯配体与不同官能团,链长和链结构的有机配体的溶液相交换,制备了各种预交换的QD油墨。通过UV-Vis-NIR光谱,光致发光(PL)和ζ电位测量,研究了长时间暴露于空气中制备的油墨的氧化和胶体稳定性。使用透射电子显微镜(TEM),X射线衍射(XRD),傅立叶变换红外(FT-IR),核磁共振(NMR)和燃烧CHNS分析来研究交换的量子点的表面化学和配体的机理交换。预先交换QD的各种油墨以单步方法沉积在不同的基材上。对于通过单步沉积3-巯基丙酸(MPA)封端的QD油墨制备的层,可以实现最佳的表面形貌和最低的氧化速率。由这样的层制造的QDSC具有比通过普通的LBL方法制造的QDSC更高的效率。此外,对MPA封盖的QD层进行退火可在基于AM1.5的太阳光照射下将基于墨水的太阳能电池的功率转换效率提高至3.22%。

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