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利用胶体量子点在发光太阳能集中器中的特性。

Harnessing the properties of colloidal quantum dots in luminescent solar concentrators.

机构信息

Énergie Matériaux Télécommunications Research Centre, Institut National de la Recherche Scientifique, 1650 Boulevard Lionel-Boulet, Varennes, Québec J3X 1S2, Canada.

出版信息

Chem Soc Rev. 2018 Jul 30;47(15):5866-5890. doi: 10.1039/c7cs00701a.

Abstract

Luminescent solar concentrators (LSCs) can serve as large-area sunlight collectors, are suitable for applications in high-efficiency and cost-effective photovoltaics (PVs), and provide adaptability to the needs of architects for building-integrated PVs, which makes them an attractive option for transforming buildings into transparent or non-transparent electricity generators. Compared with traditional organic dyes, colloidal semiconducting quantum dots (QDs) are excellent candidates as emitters for LSCs because they exhibit wide size/shape/composition-tunable absorption spectra ranging from ultraviolet to near infrared, significantly overlapping with the solar spectrum. They also feature narrow emission spectra, high photoluminescence quantum yields, high absorption coefficients, solution processability and good photostability. Most importantly, QDs can be engineered to provide a minimal overlap between absorption and emission spectra, which is key to the realization of large-area LSCs with largely suppressed reabsorption energy losses. In this review article, we will first present and discuss the working principle of LSCs, the synthesis of colloidal QDs using wet-chemistry approaches, the optical properties of QDs, their band alignment and the intrinsic relationship between the band energy structure and optical properties of QDs. We focus on emerging architectures, such as core/shell QDs. We then highlight recent progress in QD-based LSCs and their anticipated applications. We conclude this review article with the major challenges and perspectives of LSCs in future commercial technologies.

摘要

发光太阳能集热器(LSCs)可用作大面积阳光收集器,适用于高效且经济高效的光伏(PV)应用,并能满足建筑师对建筑一体化光伏的需求,使其成为将建筑物转变为透明或不透明发电站的一种有吸引力的选择。与传统的有机染料相比,胶体半导体量子点(QD)是 LSCs 发射器的极佳候选材料,因为它们具有从紫外到近红外的宽尺寸/形状/组成可调吸收光谱,与太阳光谱显著重叠。它们还具有窄的发射光谱、高光致发光量子产率、高吸收系数、溶液可加工性和良好的光稳定性。最重要的是,QD 可以被设计为提供吸收光谱和发射光谱之间的最小重叠,这是实现大面积 LSC 并大大抑制再吸收能量损失的关键。在这篇综述文章中,我们将首先介绍和讨论 LSC 的工作原理、使用湿法化学方法合成胶体 QD、QD 的光学性质、它们的能带排列以及 QD 的能带能量结构和光学性质之间的内在关系。我们重点介绍新兴的架构,如核壳 QD。然后,我们将突出显示基于 QD 的 LSC 的最新进展及其预期应用。最后,我们用 LSC 在未来商业技术中的主要挑战和展望来结束这篇综述文章。

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