Ultra-high-efficiency luminescent solar concentrator using superimposed colloidal quantum dots

被引:0
作者
Milad Rastkar Mirzaei
Ali Rostami
Samiye Matloub
Hamid Mirtaghizadeh
机构
[1] University of Tabriz,Photonics and Nanocrystals Research Lab (PNRL)
[2] ASEPE Company,SP
[3] Industrial Park of Advanced Technologies,EPT Lab
[4] University of Tabriz,Quantum Photonics Research Lab (QPRL)
[5] University of Bitlis Eren,Department of Statistics, Faculty of Science and Literature
来源
Optical and Quantum Electronics | 2020年 / 52卷
关键词
Solar cell; Luminescent solar concentration; Quantum dots; Superposition of QDs;
D O I
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中图分类号
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摘要
The world energy crisis, as well as global warming, has intensified an urgent need for renewable energies. Solar radiation can be converted to electricity by solar cells readily; however, the high cost of photovoltaic systems has hindered its worldwide commercialization. Also, the solar cells cannot be integrated directly to skyscrapers. Therefore, luminescent solar concentrators have been developed. Here, we have proposed a novel and exciting structure for LSCs based on four different groups of QDs (generally superposition of QDs) with different sizes and materials to absorb photons from sunlight ranging from ultraviolet to near-infrared and then guide re-emitted photons to edge of LSC, which culminate in capturing photons by solar cells. We designed the QDs such that the absorption and emission spectra have minimum overlap leading to limited reabsorption losses. A Monte-Carlo ray-tracing simulation has been developed to model and evaluates the effectiveness of the proposed device. Then, we have optimized the QD’s concentration and LSC geometry to achieve maximum optical efficiency. For different quantum yields ranging from 0.4 to 1, we have obtained theoretically super high optical efficiency of 11–31%. The optimization results show a 67.8% enhancement in optical flux gain leading to 3.72-times more concentrated photon flux demonstrating our device’s commercialization potential. Besides, total absorbed photons, transparency, and ultimate fate of all photons were calculated. Finally, the proposed idea can be used to introduce a high-efficiency solar concentrator while extending the coverage of solar cells to make green energy.
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[1]  
Alivisatos AP(1996)Semiconductor clusters, nanocrystals, and quantum dots Science (80-) 271 933-937
[2]  
Amdursky N(2009)Self-assembled bioinspired quantum dots: optical properties Appl. Phys. Lett. 94 41-44
[3]  
Molotskii M(2015)High-performance solution processed inorganic quantum-dot LEDS IEEE Trans. Nanotechnol. 14 911-917
[4]  
Gazit E(2019)Multi-wavelength solution-processed quantum dot laser Opt. Commun. 9 205-213
[5]  
Rosenman G(2010)Plasmonics for improved photovoltaic devices Nat. Mater. 91 67-75
[6]  
Amini P(2007)Optimized excitation energy transfer in a three-dye luminescent solar concentrator Sol. Energy Mater. Sol. Cells 18 3090-4110
[7]  
Amini P(1979)Luminescent solar concentrators 1: theory of operation and techniques for performance evaluation Appl. Opt. 95 2087-2094
[8]  
Matloub S(2018)High-performance CuInS ACS Energy Lett. 46 171-180
[9]  
Rostami A(2011) quantum dot laminated glass luminescent solar concentrators for windows Sol. Energy Mater. Sol. Cells 22 3236-3241
[10]  
Atwater HA(2013)Fabrication and full characterization of state-of-the-art quantum dot luminescent solar concentrators Acc. Chem. Res. 14 4097-4101