首页> 外文期刊>Nature photonics >Large-area luminescent solar concentrators based on ‘Stokes-shift-engineered’ nanocrystals in a mass-polymerized PMMA matrix
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Large-area luminescent solar concentrators based on ‘Stokes-shift-engineered’ nanocrystals in a mass-polymerized PMMA matrix

机译:基于“斯托克斯频移工程”纳米晶体的大面积发光太阳能聚光器,在聚甲基丙烯酸甲酯基质中

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摘要

Luminescent solar concentrators are cost-effective complements to semiconductor photovoltaics that can boost the output of solar cells and allow for the integration of photovoltaic-active architectural elements into buildings (for example, photovoltaic windows). Colloidal quantum dots are attractive for use in luminescent solar concentrators, but their small Stokes shift results in reabsorption losses that hinder the realization of large-area devices. Here, we use ‘Stokes-shiftengineered’ CdSe/CdS quantum dots with giant shells (giant quantum dots) to realize luminescent solar concentrators without reabsorption losses for device dimensions up to tens of centimetres. Monte-Carlo simulations show a 100-fold increase in efficiency using giant quantum dots compared with core-only nanocrystals. We demonstrate the feasibility of this approach by using high-optical-quality quantum dot–polymethylmethacrylate nanocomposites fabricated using a modified industrial method that preserves the light-emitting properties of giant quantum dots upon incorporation into the polymer. Study of these luminescent solar concentrators yields optical efficiencies >10% and an effective concentration factor of 4.4. These results demonstrate the significant promise of Stokes-shift-engineered quantum dots for large-area luminescent solar concentrators.
机译:发光太阳能集中器是半导体光伏产品的经济高效的补充产品,可以提高太阳能电池的产量,并允许将光伏活性建筑元素集成到建筑物(例如光伏窗户)中。胶体量子点在发光太阳能集中器中很有吸引力,但是它们的小斯托克斯位移会导致重吸收损失,从而阻碍了大面积器件的实现。在这里,我们使用具有大型外壳的“斯托克斯位移工程化” CdSe / CdS量子点(巨型量子点)来实现发光太阳能聚光器,而对于长达数十厘米的设备,其吸收能力却不会降低。蒙特卡洛模拟显示,与仅含核的纳米晶体相比,使用巨型量子点的效率提高了100倍。我们使用改进的工业方法制造的高光学质量量子点-聚甲基丙烯酸甲酯纳米复合材料,证明了这种方法的可行性,该复合材料在掺入聚合物后保留了巨大量子点的发光特性。对这些发光太阳能聚光器的研究得出光效率> 10%,有效聚光系数为4.4。这些结果证明了斯托克斯位移工程量子点对于大面积发光太阳能聚光器的重大前景。

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