UbiQD, Inc. , Los Alamos , New Mexico 87544 , United States.
ACS Nano. 2019 Aug 27;13(8):9112-9121. doi: 10.1021/acsnano.9b03335. Epub 2019 Jul 17.
While luminescent concentrators (LCs) are mainly designed to harvest sunlight and convert its energy into electricity, the same concept can be advantageous in alternative applications. Examples of such applications are demonstrated here by coupling the edge-guided light of high-performance LCs based on CuInSeS/ZnS quantum dots into optical fibers with emission covering visible-to-NIR spectral regions. In particular, a cost-efficient, miniature broadband light source for medical diagnostics, a spectral-conversion and light-guiding device for agriculture, and a large-area broadband tunable detector for telecommunications are demonstrated. Various design considerations and performance optimization approaches are discussed and summarized. Prototypes of the devices are manufactured and tested. Individual elements of the broadband light source show coupling efficiencies up to 1%, which is sufficient to saturate typical fiber-coupled spectrometers at a minimal integration time of 1 ms using 100 mW blue excitation. Agricultural devices are capable of delivering ∼10% of photosynthetically active radiation (per device) converted from absorbed sunlight to the lower canopy of plants, which boosted the tomato yield in a commercial greenhouse by 7% (fresh weight). Finally, large-scale prototype detectors can be used to discern time-modulated unfocused signals with an average power as low as 1 μW, which would be useful for free-space telecommunication systems. Fully optimized devices are expected to make significant impacts on speed and bandwidth of free-space telecommunication systems, medical diagnostics, and greenhouse crop yields.
虽然荧光集中器(LCs)主要用于收集阳光并将其能量转化为电能,但相同的概念在替代应用中也有优势。这里通过将基于 CuInSeS/ZnS 量子点的高性能 LCs 的边缘引导光耦合到覆盖可见光到近红外光谱区域的光纤中,展示了此类应用的示例。特别是,演示了一种用于医疗诊断的具有成本效益的、小型的宽带光源、一种用于农业的光谱转换和导光装置,以及一种用于电信的大面积宽带可调谐探测器。讨论并总结了各种设计考虑因素和性能优化方法。制造和测试了设备原型。宽带光源的各个元件的耦合效率高达 1%,足以在使用 100 mW 蓝色激发时在 1 ms 的最小积分时间内使典型的光纤耦合光谱仪饱和。农业设备能够将吸收的太阳光中约 10%的光合有效辐射(每个设备)转换为植物下层冠层,这使商业温室中的番茄产量提高了 7%(鲜重)。最后,大规模原型探测器可用于分辨平均功率低至 1 μW 的时变非聚焦信号,这对于自由空间通信系统很有用。完全优化的设备有望对自由空间通信系统的速度和带宽、医疗诊断和温室作物产量产生重大影响。