ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
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Theoretical simulation and analysis of large size BMP-LSC by 3D Monte Carlo ray tracing model |
Feng Zhang(张峰)1, Ning-Ning Zhang(张宁宁)1, Yi Zhang(张义)3, Sen Yan(闫森)1, Song Sun(孙松)1,2, Jun Bao(鲍骏)1,2, Chen Gao(高琛)1,2 |
1 National Synchrotron Radiation Laboratory, Collaborative Innovation Center of Chemistry for Energy Materials, University of Science and Technology of China, Hefei 230029, China;
2 CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, University of Science and Technology of China, Hefei 230026, China;
3 College of Science, Sichuan Agricultural University, Ya'an 625014, China |
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Abstract Luminescent solar concentrators (LSC) can reduce the area of solar cells by collecting light from a large area and concentrating the captured light onto relatively small area photovoltaic (PV) cells, and thereby reducing the cost of PV electricity generation. LSCs with bottom-facing cells (BMP-LSC) can collect both direct light and indirect light, so further improving the efficiency of the PV cells. However, it is hard to analyze the effect of each parameter by experiment because there are too many parameters involved in the BMP-LSC. In this paper, all the physical processes of the light transmission and collection in the BMP-LSC were analyzed. A three-dimensional Monte Carlo ray tracing program was developed to study the transmission of photons in the LSC. A larger-size LSC was simulated, and the effects of dye concentration, the LSC thickness, the cell area, and the cell distance were systematically analyzed.
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Received: 08 December 2016
Revised: 04 January 2017
Accepted manuscript online:
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PACS:
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42.15.Dp
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(Wave fronts and ray tracing)
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42.79.Ek
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(Solar collectors and concentrators)
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88.40.-j
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(Solar energy)
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88.40.F-
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(Solar concentrators)
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Fund: Project supported by the National Natural Science Foundation of China (Grant No. U1632273) and the Chinese Universities Scientific Fund (Grant No. CX3430000001). |
Corresponding Authors:
Jun Bao, Chen Gao
E-mail: baoj@ustc.edu.cn;cgao@ustc.edu.cn
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Cite this article:
Feng Zhang(张峰), Ning-Ning Zhang(张宁宁), Yi Zhang(张义), Sen Yan(闫森), Song Sun(孙松), Jun Bao(鲍骏), Chen Gao(高琛) Theoretical simulation and analysis of large size BMP-LSC by 3D Monte Carlo ray tracing model 2017 Chin. Phys. B 26 054201
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[1] |
Conibeer G 2007 Mater. Today 10 42
|
[2] |
Zhao S Q, Zhang J R, Shi H J, Yan K K, Huang C, Yang L M, Yang R and Zhao K 2016 Chin. Phys. B 25 027202
|
[3] |
Yücedağ I, Kaya A, Altindal Ş and Uslu I 2014 Chin. Phys. B 23 047304
|
[4] |
van Sark W G J H M 2013 Renew. Energ. 49 207
|
[5] |
Khonkar H, Alyahya A, Aljuwaied M, Halawani M, Al Saferan A, Al-Khaldi F, Alhadlaq F and Wacaser B A 2014 Sol. Energy 110 268
|
[6] |
Sonneveld P J, Swinkels G L A M, van Tuijl B A J, Janssen H J J, Campen J and Bot G P A 2011 Sol. Energy 85 432
|
[7] |
Su Y, Kulacki F A and Davidson J H 2014 Sol. Energy 107 145
|
[8] |
Weber W H and Lambe J 1976 Appl. Optics 15 2299
|
[9] |
Batchelder J S, Zewail A H and Cole T 1979 Appl. Optics 18 3090
|
[10] |
Desmet L, Ras A J M, de Boer D K G and Debije M G 2012 Opt. Lett. 37 3087
|
[11] |
Currie M J, Mapel J K, Heidel T D, Goffri S and Baldo M A 2008 Science 321 226
|
[12] |
Shcherbatyuk G V, Inman R H, Wang C, Winston R and Ghosh S 2010 Appl. Phys. Lett. 96 191901
|
[13] |
Li H, Wu K, Lim J, Song H J and Klimov V I 2016 Nat. Energy 1 16157
|
[14] |
Koeppe R, Sariciftci N S and Buchtemann A 2007 Appl. Phys. Lett. 90 181126
|
[15] |
Zhang J, Wang M J, Zhang Y, He H, Xie W, Yang M M, Ding J J, Bao J, Sun S and Gao C 2015 Sol. Energy 117 260
|
[16] |
Debije M G and Verbunt P P C 2012 Adv. Energy Mater. 2 12
|
[17] |
Rowan B C, Wilson L R and Richards B S 2008 IEEE J. Sel. Top. Quant. 14 1312
|
[18] |
van Sark W G J H M, Barnham K W J, Slooff L H, Chatten A J, Buchtemann A, Meyer A, McCormack S J, Koole R, Farrell D J, Bose R, Bende E E, Burgers A R, Budel T, Quilitz J, Kennedy M, Meyer T, Donega C D M, Meijerink A and Vanmaekelbergh D 2008 Opt. Express 16 21773
|
[19] |
Erickson C S, Bradshaw L R, McDowall S, Gilbertson J D, Gamelin D R and Patrick D L 2014 ACS Nano 8 3461
|
[20] |
Chuang C H M, Brown P R, Bulovic V and Bawendi M G 2014 Nat. Mater. 13 796
|
[21] |
Green M A, Ho-Baillie A and Snaith H J 2014 Nat. Photonics 8 506
|
[22] |
Mansour A F 2003 Polym. Test. 22 491
|
[23] |
Corrado C, Leow S W, Osborn M, Chan E, Balaban B and Carter S A 2013 Sol. Energ. Mat. Sol. C. 111 74
|
[24] |
Zhang Y, Sun S, Kang R, Zhang J, Zhang N N, Yan W H, Xie W, Ding J J, Bao J and Gao C 2015 Energ. Convers. Manage. 95 187
|
[25] |
de Boer D K G, Bruls D and Jagt H 2016 Opt. Express 24 A1069
|
[26] |
Vishwanathan B, Reinders A H M E, de Boer D K G, Desmet L, Ras A J M, Zahn F H and Debijed M G 2015 Sol. Energy 112 120
|
[27] |
Chatten A J, Barnham K W J, Buxton B F, Ekins-Daukes N J and Malik M A 2004 Semiconductors+ 38 909
|
[28] |
Carrascosa M, Unamuno S and Agullolopez F 1983 Appl. Optics 22 3236
|
[29] |
Krumer Z, Pera S J, van Dijk-Moes R J A, Zhao Y M, de Brouwer A F P, Groeneveld E, van Sark W G J H M, Schropp R E I and Donega C D 2013 Sol. Energ. Mat. Sol. C. 111 57
|
[30] |
Sahin D, Ilan B and Kelley D F J 2011 Appl. Phys. 110 033108
|
[31] |
Wilton S R, Fetterman M R, Low J J, You G J, Jiang Z Y and Xu J 2014 Opt. Express 22 A35
|
[32] |
Leow S W, Corrado C, Osborn M and Carter S A 2013 Proc. SPIE 8821 882103
|
[33] |
Sansregret J, Drake J M, Thomas W R L and Lesiecki M L 1983 Appl. Optics 22 573
|
[34] |
Meinardi F, Colombo A, Velizhanin K A, Simonutti R, Lorenzon M, Beverina L, Viswanatha R, Klimov V I and Brovelli S 2014 Nat. Photonics 8 392
|
[35] |
Li X H, Fan R W, Xia Y Q, Liu W and Chen D Y 2007 Chin. Phys. 16 3681
|
[36] |
Olson R W, Loring R F and Fayer M D 1981 Appl. Optics 20 2934
|
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