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通过优化双金属硫化物制备用于高性能量子点敏化太阳能电池的异质结构多层器件。

Fabrication of heterostructure multilayer devices through the optimization of Bi-metal sulfides for high-performance quantum dot-sensitized solar cells.

作者信息

Agoro Mojeed A, Meyer Edson L, Olayiwola Olufemi I

机构信息

University of Fort Hare, Faculty of Science and Agriculture, Fort Hare Institute of Technology Private Bag X1314 Alice 5700 Eastern Cape South Africa

University of Fort Hare, Faculty of Science and Agriculture, Department of Chemistry Private Bag X1314 Alice 5700 Eastern Cape South Africa.

出版信息

RSC Adv. 2024 Oct 24;14(46):33751-33763. doi: 10.1039/d4ra05784h. eCollection 2024 Oct 23.

Abstract

In this work, a titanium dioxide and lead sulfide (TiO/PbS) nano-size heterostructure with tin sulfide was fabricated and coated a two-step direct deposition process. Its microstructure, morphology, elemental composition, optical absorption, and photochemical activity were investigated. Linear sweep voltammetry and cyclic voltammetry curves substantiated its catalytic activity, indicating quantum dot effects of a well-developed space charge domain on the surface of the hybrid structure. These give rise to electron-hole recombination suppression and a high charge mobility rate. Moreover, direct stabilization was identified in current density, corresponding to the hybrid structures limiting the diffusion current process. Higher values observed were substantiated by the role of quantum dot-size effects and enhanced crystalline structures, leading to a reduction in series resistance and an improved conversion efficiency of 10.05%. Overall, theoretical analyses and empirical findings indicated that the seamless migration of photoexcited electrons across the interfaces of SnS and PbS is linked to quantum dot effect synergy. This is facilitated by the space charge region, which serves as a conduit for efficient electron transfer between the respective materials.

摘要

在这项工作中,通过两步直接沉积工艺制备并涂覆了一种含有硫化锡的二氧化钛和硫化铅(TiO/PbS)纳米级异质结构。研究了其微观结构、形态、元素组成、光吸收和光化学活性。线性扫描伏安法和循环伏安法曲线证实了其催化活性,表明在混合结构表面形成了发育良好的空间电荷域的量子点效应。这些效应抑制了电子 - 空穴复合,并提高了电荷迁移率。此外,在电流密度中发现了直接稳定现象,这与混合结构限制扩散电流过程有关。观察到的较高值归因于量子点尺寸效应和增强的晶体结构,导致串联电阻降低,转换效率提高到10.05%。总体而言,理论分析和实证研究结果表明,光激发电子在SnS和PbS界面上的无缝迁移与量子点效应协同作用有关。空间电荷区促进了这种迁移,它作为各材料之间有效电子转移的通道。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e0a/11499745/510f39cfd3c7/d4ra05784h-s1.jpg

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