Numerical Modeling of Hybrid Solar/Thermal Conversion Efficiency Enhanced by Metamaterial Light Scattering for Ultrathin PbS QDs-STPV Cell

被引:12
作者
Baitiche, Oussama [1 ]
Bendelala, Fathi [1 ]
Cheknane, Ali [1 ]
Rabehi, Abdelaziz [2 ,3 ]
Comini, Elisabetta [2 ]
机构
[1] Univ Amar Telidji Laghouat, Lab Materiaux Syst Energet Energies Renouvelables, Bd Martyrs BP37G, Laghouat 03000, Algeria
[2] Univ Brescia, SENSOR Lab, Via D Valotti 9, I-25133 Brescia, Italy
[3] Univ Djelfa, Telecommun & Smart Syst Lab, POB 3117, Djelfa 17000, Algeria
关键词
metamaterial; plasmonics; colloidal quantum dots; hybrid conversion; ENERGY; ABSORBER;
D O I
10.3390/cryst14070668
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
Ultrathin cells are gaining popularity due to their lower weight, reduced cost, and enhanced flexibility. However, compared to bulk cells, light absorption in ultrathin cells is generally much lower. This study presents a numerical simulation of a metamaterial light management structure made of ultrathin lead sulfide colloidal quantum dots (PbS CQDs) sandwiched between a top ITO grating and a tungsten backing to develop an efficient hybrid solar/thermophotovoltaic cell (HSTPVC). The optical properties were computed using both the finite integration technique (FIT) and the finite element method (FEM). The absorptance enhancement was attributed to the excitations of magnetic polaritons (MP), surface plasmon polaritons (SPP), and lossy mode resonance (LMR). The HSTPVC with the metamaterial optical light management structure was assessed for short-circuit current density, open-circuit voltage, and conversion efficiency. The results show a conversion efficiency of 18.02% under AM 1.5 solar illumination and a maximum thermophotovoltaic conversion efficiency of 12.96% at TB = 1600 K. The HSTPVC can operate in a hybrid solar/thermal conversion state when the ITO grating is included by combining the advantages of QDs and metamaterials. This work highlights the potential for developing a new generation of hybrid STPV cells through theoretical modeling and numerical simulations.
引用
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页数:13
相关论文
共 48 条
[1]  
Arya S., 2023, Solar Cells: Types and Applications, DOI [10.1007/978-981-99-7333-0, DOI 10.1007/978-981-99-7333-0]
[2]   Thermophotovoltaics: Basic principles and critical aspects of system design [J].
Bauer T. .
Green Energy and Technology, 2011, 7
[3]   Extending the absorption band from infrared to ultraviolet using the ITO transition from reflection to transparence [J].
Bendelala, Fathi ;
Cheknane, Ali ;
Benatallah, Mohammed ;
Nunzi, Jean-Michel .
EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2021, 96 (01)
[4]   Extremely Low-Loss Broadband Thermal Infrared Absorber Based on Tungsten Metamaterial [J].
Bendelala, Fathi ;
Cheknane, Ali ;
Hilal, Hikmat S. ;
Goumri-Said, Souraya .
JOURNAL OF ELECTRONIC MATERIALS, 2019, 48 (05) :3304-3310
[5]   Enhanced low-gap thermophotovoltaic cell efficiency for a wide temperature range based on a selective meta-material emitter [J].
Bendelala, Fathi ;
Cheknane, Ali ;
Hilal, Hikmat .
SOLAR ENERGY, 2018, 174 :1053-1057
[6]  
Bermel P, 2015, OPT EXPRESS, V23, P1533, DOI [10.1364/OE.23.0A1533, 10.1364/OE.23.01533]
[7]   Solution processed infrared- and thermo-photovoltaics based on 0.7 eV bandgap PbS colloidal quantum dots [J].
Bi, Yu ;
Bertran, Arnau ;
Gupta, Shuchi ;
Ramiro, Inigo ;
Pradhan, Santanu ;
Christodoulou, Sotirios ;
Majji, Shanmukh-Naidu ;
Zafer Akgul, Mehmet ;
Konstantatos, Gerasimos .
NANOSCALE, 2019, 11 (03) :838-843
[8]   Thin-Film Architectures with High Spectral Selectivity for Thermophotovoltaic Cells [J].
Burger, Tobias ;
Fan, Dejiu ;
Lee, Kyusang ;
Forrest, Stephen R. ;
Lenert, Andrej .
ACS PHOTONICS, 2018, 5 (07) :2748-2754
[9]   Broadband light trapping strategies for quantum-dot photovoltaic cells (>10%) and their issues with the measurement of photovoltaic characteristics [J].
Cho, Changsoon ;
Song, Jung Hoon ;
Kim, Changjo ;
Jeong, Sohee ;
Lee, Jung-Yong .
SCIENTIFIC REPORTS, 2017, 7
[10]   Over 15% Efficiency PbS Quantum-Dot Solar Cells by Synergistic Effects of Three Interface Engineering: Reducing Nonradiative Recombination and Balancing Charge Carrier Extraction [J].
Ding, Chao ;
Wang, Dandan ;
Liu, Dong ;
Li, Hua ;
Li, Yusheng ;
Hayase, Shuzi ;
Sogabe, Tomah ;
Masuda, Taizo ;
Zhou, Yong ;
Yao, Yingfang ;
Zou, Zhigang ;
Wang, Ruixiang ;
Shen, Qing .
ADVANCED ENERGY MATERIALS, 2022, 12 (35)