Plasmonic-enhanced microcrystalline silicon solar cells

被引:12
作者
Kumawat, Uttam K. [1 ]
Kumar, Kamal [1 ]
Mishra, Sumakesh [1 ]
Dhawan, Anuj [1 ]
机构
[1] Indian Inst Technol Delhi, Dept Elect Engn, New Delhi 110016, India
关键词
NANORING ARRAYS; BACK REFLECTOR; LITHOGRAPHY; FABRICATION; TECHNOLOGY; ABSORPTION; SCATTERING; DESIGN;
D O I
10.1364/JOSAB.378946
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
This paper describes the enhanced performance of the microcrystalline silicon(mu c-Si) thin-film solar cells due to the incorporation of plasmonic nanostructures. Finite-difference time-domain numerical modeling is used to calculate the optical properties of the solar cells such as the absorption and the short-circuit current density (J(sc)). In this paper, two-dimensional(2D) periodic arrays of various geometries of plasmonic nanostructures such as nanorings, nano-discs, nano-hemispheres, and nano-cubes are employed on the back side of the solar cells to increase the absorption for the longer wavelengths of the incident light, where most of the photons remain unharvested due to extremely low absorption coefficients of mu c-Si material. These plasmonic nanostructures are compared in terms of solar cell performance, and it is found that the 2D periodic arrays of nano-rings show significant absorption enhancement at multiple wavelengths, thereby leading to a substantial enhancement in the J(sc). An enhancement of 35% in the J(sc) is obtained when a 2D periodic array of plasmonic nano-rings is present on the back side of the solar cell, which is higher than that of the mu c-Si solar cells having arrays of plasmonic nanostructures of other geometries (i.e., nano-discs, nano-cubes, nano-hemispheres). It is observed that the enhancement in the absorption is attributed to the enhanced electromagnetic fields in the active layer due to several localized surface plasmon modes that are excited, in the plasmonic nanostructures at different wavelengths. Moreover, the effect of the thickness of the spacer layer (the layer between the metal back-reflector and plasmonic nanostructure arrays) on the performance of different plasmonic solar cells is examined. (C) 2020 Optical Society of America
引用
收藏
页码:495 / 504
页数:10
相关论文
共 52 条
[1]   Ultra-fast plasmonic back reflectors production for light trapping in thin Si solar cells [J].
Araujo, Andreia ;
Mendes, Manuel J. ;
Mateus, Tiago ;
Costa, Joao ;
Nunes, Daniela ;
Fortunato, Elvira ;
Aguas, Hugo ;
Martins, Rodrigo .
SOLAR ENERGY, 2018, 174 :786-792
[2]  
Atwater H.A., 2010, Mater. Sustain. Energy A Collect. Peer-Reviewed Res. Rev. Artic. from Nat. Publ. Gr, P3
[3]   High-efficiency crystalline silicon solar cells: status and perspectives [J].
Battaglia, Corsin ;
Cuevas, Andres ;
De Wolf, Stefaan .
ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (05) :1552-1576
[4]   Light harvesting enhancement in solar cells with quasicrystalline plasmonic structures [J].
Bauer, Christina ;
Giessen, Harald .
OPTICS EXPRESS, 2013, 21 (09) :A363-A371
[5]   Fabrication of Elliptical Nanorings with Highly Tunable and Multiple Plasmonic Resonances [J].
Cai, Yangjun ;
Li, Yang ;
Nordlander, Peter ;
Cremer, Paul S. .
NANO LETTERS, 2012, 12 (09) :4881-4888
[6]   Single-Junction Polymer Solar Cells Exceeding 10% Power Conversion Efficiency [J].
Chen, Jing-De ;
Cui, Chaohua ;
Li, Yan-Qing ;
Zhou, Lei ;
Ou, Qing-Dong ;
Li, Chi ;
Li, Yongfang ;
Tang, Jian-Xin .
ADVANCED MATERIALS, 2015, 27 (06) :1035-1041
[7]   Fabrication of metal nanoring array by nanoimprint lithography (NIL) and reactive ion etching [J].
Cui, Bo ;
Veres, Teodor .
MICROELECTRONIC ENGINEERING, 2007, 84 (5-8) :1544-1547
[8]   Energy payback time and carbon footprint of commercial photovoltaic systems [J].
de Wild-Scholten, M. J. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2013, 119 :296-305
[9]   Wafer-scale fabrication of metal nanoring and nanocrescent arrays from nanoimprinted nanopillar arrays [J].
Fan, Congying ;
Wang, Xuelin ;
Liu, Long ;
Zhang, Jian ;
Cui, Yushuang ;
Zhan, Peng ;
Yuan, Changsheng ;
Ge, Haixiong ;
Wang, Zhenlin ;
Chen, Yanfeng .
JOURNAL OF MICRO-NANOLITHOGRAPHY MEMS AND MOEMS, 2017, 16 (03)
[10]  
Green MA, 2001, ADV MATER, V13, P1019, DOI 10.1002/1521-4095(200107)13:12/13<1019::AID-ADMA1019>3.0.CO