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Photovoltaics Literature Survey (No. 145)

MetadataDetails
Publication Date2018-09-04
JournalProgress in Photovoltaics Research and Applications
AuthorsZiv Hameiri
InstitutionsUNSW Sydney

In order to help readers stay up-to-date in the field, each issue of Progress in Photovoltaics will contain a list of recently published journal articles that are most relevant to its aims and scope. This list is drawn from an extremely wide range of journals, including IEEE Journal of Photovoltaics, Solar Energy Materials and Solar Cells, Renewable Energy, Renewable and Sustainable Energy Reviews, Journal of Applied Physics, and Applied Physics Letters. To assist readers, the list is separated into broad categories, but please note that these classifications are by no means strict. Also note that inclusion in the list is not an endorsement of a paper’s quality. If you have any suggestions, please email Ziv Hameiri at [email protected]. Yang, MM, Kim, DJ, Alexe, M. Flexo-photovoltaic effect. Science 2018; 360( 6391): 905. Haifei, L, Xingang, R, Dan, O, et al. Emerging novel metal electrodes for photovoltaic applications. Small 2018; 14( 14): 1703140. Sampaio, PGV, GonzĂĄlez, MOA, Vasconcelos, RM, Santos, MAT, Toledo, JC, Pereira, JPP Photovoltaic technologies: mapping from patent analysis. Renew Sustain Energy Rev 2018; 93: 215- 224. Curtin, IJ, Holmes, RJ. Decoupling photocurrent loss mechanisms in photovoltaic cells using complementary measurements of exciton diffusion. Advanced Energy Materials 2018; 8( 13): 1702339. Soufiani, AM, Kim, J, Ho-Baillie, A, Green, M, Hameiri, Z Luminescence imaging characterization of perovskite solar cells: a note on the analysis and reporting the results. Advanced Energy Materials 2018; 8( 12): 1702256. Mochizuki, T, Joonwichien, S, Tanahashi, K, Shirasawa, K, Sakata, I, Takato, H Internal quantum efficiency mapping for evaluation of rear surface of passivated emitter and rear cell. Applied Physics Express 2018; 11( 8): 086601. Chung, D, Mitchell, B, Juhl, MK, Abbott, M, Trupke, T Lifetime imaging on silicon bricks using the ratio of photoluminescence images with different excitation wavelengths. IEEE Journal of Photovoltaics 2018; 8( 4): 943- 951. Teal, A, Mitchell, B, Juhl, MK. Improved spatial resolution of luminescence images acquired with a silicon line scanning camera. J Appl Phys 2018; 123( 16): 161501. Braly, IL, Stoddard, RJ, Rajagopal, A, Jen, AKY, Hillhouse, HW Photoluminescence and photoconductivity to assess maximum open-circuit voltage and carrier transport in hybrid perovskites and other photovoltaic materials. Journal of Physical Chemistry Letters 2018; 9( 13): 3779- 3792. Heinz, FD, Zhu, Y, Hameri, Z, Juhl, M, Trupke, T, Schubert, MC The principle of adaptive excitation for photoluminescence imaging of silicon: theory. Physica Status Solidi-Rapid Research Letters 2018; 12( 7): 1800137. Breitenstein, O, Straube, H, Iwig, K. Lock-in thermography with depth resolution on silicon solar cells. Solar Energy Materials and Solar Cells 2018; 185: 66- 74. Guillo Lohan, B, Amara, M, Kaminski-Cachopo, A, Lemiti, M Innovative experimental setup for thermal and electrical characterization of silicon solar cells under controlled environmental conditions. Solar Energy Materials and Solar Cells 2018; 185: 300- 306. Bahabry, RR, Kutbee, AT, Khan, SM, et al. Corrugation architecture enabled ultraflexible wafer-scale high-efficiency monocrystalline silicon solar cell. Advanced Energy Materials 2018; 8( 12): 1702221. Yang, XB, Aydin, E, Xu, H, et al. Tantalum nitride electron-selective contact for crystalline silicon solar cells. Advanced Energy Materials 2018; 8( 20): 1800608. Dwivedi, N, Yeo, RJ, Tan, HR, et al. Evidence for chemicals intermingling at silicon/titanium oxide (TiOx) interface and existence of multiple bonding states in monolithic TiOx. Advanced Functional Materials 2018; 28( 28): 1707018. Hashmi, G, Hasanuzzaman, M, Basher, MK, Hoq, M, Rahman, MH Texturization of as-cut p-type monocrystalline silicon wafer using different wet chemical solutions. Applied Physics A. Materials Science and Processing 2018; 124( 6): 415 Black, LE, Kessels, WMM. POx/Al2O3 stacks: highly effective surface passivation of crystalline silicon with a large positive fixed charge. Appl Phys Lett 2018; 112( 20): 201603. Guangtao, Y, Peiqing, G, Procel, P, et al. Poly-crystalline silicon-oxide films as carrier-selective passivating contacts for c-Si solar cells. Applied Physics Letters 2018; 112( 19): 193904. Macco, B, Bivour, M, Deijkers, JH, et al. Effective passivation of silicon surfaces by ultrathin atomic-layer deposited niobium oxide. Applied Physics Letters 2018; 112( 24): 242105. Nampalli, N, Laine, HS, Colwell, J, et al. Rapid thermal anneal activates light induced degradation due to copper redistribution. Applied Physics Letters 2018; 113( 3): 032104. Schnabel, M, Loo, BWH, Nemeth, W, et al. Hydrogen passivation of poly-Si/SiOx contacts for Si solar cells using Al2O3 studied with deuterium. Applied Physics Letters 2018; 112( 20): 203901. Yimao, W, Bullock, J, Hettick, M, et al. Zirconium oxide surface passivation of crystalline silicon. Applied Physics Letters 2018; 112( 20): 201604. Basnet, R, Rougieux, FE, Chang, S, et al. Methods to improve bulk lifetime in n-type Czochralski-grown upgraded metallurgical-grade silicon wafers. IEEE Journal of Photovoltaics 2018; 8( 4): 990- 996. Eberle, R, Haag, ST, Geisemeyer, I, Padilla, M, Schubert, MC Temperature coefficient imaging for silicon solar cells. IEEE Journal of Photovoltaics 2018; 8( 4): 930- 936. Haifeng, C, Preis, P, Lossen, J, et al. Impact of the presence of busbars during the fast firing process on contact resistances. IEEE Journal of Photovoltaics 2018; 8( 4): 923- 929. Joonwichien, S, Utsunomiya, S, Kida, Y, et al. Implementation of selective emitter for industrial-sized PERCs using wet chemical etch-back process. IEEE Journal of Photovoltaics 2018; 8( 3): 703- 709. Kamp, M, Efinger, R, Gensowski, K, et al. Structuring of metal layers by electrochemical screen printing for back-contact solar cells. IEEE Journal of Photovoltaics 2018; 8( 3): 676- 682. Kruse, CN, Bothe, K, Brendel, R. Comparison of free energy loss analysis and synergistic efficiency gain analysis for PERC solar cells. IEEE Journal of Photovoltaics 2018; 8( 3): 683- 688. Li, Y, Kim, HS, Yi, J, Kim, D, Huh, JY Improved electrical performance of low-temperature-cured silver electrode for silicon heterojunction solar cells. IEEE Journal of Photovoltaics 2018; 8( 4): 969- 975. Lin, JT, Lai, CC, Lee, CT, Hu, YY, Ho, KY, Haga, SW A high-efficiency HIT solar cell with pillar texturing. IEEE Journal of Photovoltaics 2018; 8( 3): 669- 675. Mudgal, S, Singh, S, Komarala, VK. Investigation of electrical parameters of amorphous-crystalline silicon heterojunction solar cells: correlations between carrier dynamics and s-shape of current density-voltage curve. IEEE Journal of Photovoltaics 2018; 8( 4): 909- 915. Ning, S, Romer, U, Gentle, A, et al. Metallization method for interdigitated back-contact silicon solar cells employing an insulating resin layer and a Ti/Ag/Cu metal stack. IEEE Journal of Photovoltaics 2018; 8( 4): 916- 922. Pasanen, TP, Laine, HS, Vahanissi, V, et al. Impact of standard cleaning on electrical and optical properties of phosphorus-doped black silicon. IEEE Journal of Photovoltaics 2018; 8( 3): 697- 702. Peibst, R, Larionova, Y, Reiter, S, et al. Building blocks for industrial, screen-printed double-side contacted POLO cells with highly transparent ZnO:Al layers. IEEE Journal of Photovoltaics 2018; 8( 3): 719- 725. Pei-Chieh, H, Ning, S, Xi, W, et al. 266-nm ps laser ablation for copper-plated p-type selective emitter PERC silicon solar cells. IEEE Journal of Photovoltaics 2018; 8( 4): 952- 959. Qviller, AJ, Marstein, ES, Chang Chuan, Y, et al. Hydrogen concentration in photovoltaic a-Si:H annealed at different temperatures measured by neutron reflectometry. IEEE Journal of Photovoltaics 2018; 8( 4): 1098- 1101. Rahman, T, Nguyen, HT, Tarazona, A, Shi, J, Han, YJ, Franklin, E, Macdonald, D, Boden, SA Characterization of epitaxial heavily doped silicon regions formed by hot-wire chemical vapor deposition using micro-Raman and microphotoluminescence spectroscopy. IEEE Journal of Photovoltaics 2018; 8( 3): 813- 819. Su, GY, Jia, R, Dai, XW, Tao, K, Sun, H, Jin, Z, Liu, X The influence of black silicon morphology modification by acid etching to the properties of diamond wire sawn multicrystalline silicon solar cells. IEEE Journal of Photovoltaics 2018; 8( 4): 937- 942. Wasmer, S, Horst, A, Saint-Cast, P, et al. Modeling-free efficiency gain analysis of passivated emitter and rear silicon solar cells. IEEE Journal of Photovoltaics 2018; 8( 3): 689- 696. Kim, M, Chen, D, Abbott, M, et al. Impact of interstitial iron on the study of meta-stable B-O defects in Czochralski silicon: further evidence of a single defect. Journal of Applied Physics 2018; 123( 16): 161586. Vaqueiro-Contreras, M, Markevich, VP, Mullins, J, et al. Lifetime degradation of n-type Czochralski silicon after hydrogenation. Journal of Applied Physics 2018; 123( 16): 161415. Ahmmed, MS, Song, LH, Huda, N. Thermal effects on the hydrogen passivation of silicon wafers during diode laser annealing. Physica Status Solidi A—Applications and Materials Science 2018; 215( 11): 1800060. Chakraborty, S, Huang, Y, Wilson, M, et al. Mitigating light and elevated temperature induced degradation in multicrystalline silicon wafers and PERC solar cells using phosphorus diffusion gettering. Physica Status Solidi A—Applications and Materials Science 2018; 215( 13): 1800160. Lohmuller, S, Lohmuller, E. Advanced BBr3 diffusion with second deposition step for selective emitter formation by laser doping. Physica Status Solidi—Rapid Research Letters 2018; 12( 7): 1700442. Ye, F, Li, Y, Deng, W, Chen, H, Liao, G, Feng, Z, Yuan, N, Ding, J UV-induced degradation in multicrystalline PERC cell and module. Solar Energy 2018; 170: 1009- 1015. Basu, PK, Sreejith, KP, Yadav, TS, Kottanthariyil, A, Sharma, AK Novel low-cost alkaline texturing process for diamond-wire-sawn industrial monocrystalline silicon wafers. Solar Energy Materials and Solar Cells 2018; 185: 406- 414. Chen, D, Hamer, PG, Kim, M, Fung, TH, Bourret-Sicotte, G, Liu, S, Chan, CE, Ciesla, A, Chen, R, Abbott, MD, Hallam, BJ, Wenham, SR Hydrogen induced degradation: a possible mechanism for light- and elevated temperature-induced degradation in n-type silicon. Solar Energy Materials and Solar Cells 2018; 185: 174- 182. GarcĂ­a-Hernansanz, R, GarcĂ­a-Hemme, E, Montero, D, Olea, J, Prado, A, MĂĄrtil, I, Voz, C, Gerling, LG, Puigdollers, J, Alcubilla, R Transport mechanisms in silicon heterojunction solar cells with molybdenum oxide as a hole transport layer. Solar Energy Materials and Solar Cells 2018; 185: 61- 65. Glunz, SW, Feldmann, F. SiO2 surface passivation layers—a key technology for silicon solar cells. Solar Energy Materials and Solar Cells 2018; 185: 260- 269. Haase, F, Hollemann, C, SchĂ€fer, S, Merkle, A, RienĂ€cker, M, KrĂŒgener, J, Brendel, R, Peibst, R Laser contact openings for local poly-Si-metal contacts enabling 26.1%-efficient POLO-IBC solar cells. Solar Energy Materials and Solar Cells 2018; 186: 184- 193. Helmich, L, Walter, DC, Bredemeier, D, Falster, R, Voronkov, VV, Schmidt, J In-situ characterization of electron-assisted regeneration of Cz-Si solar cells. Solar Energy Materials and Solar Cells 2018; 185: 283- 286. Joonwichien, S, Kida, Y, Moriya, M, Utsunomiya, S, Shirasawa, K, Takato, H Assisted passivation by a chemically grown SiO2 layer for p-type selective emitter-passivated emitter and rear cells. Solar Energy Materials and Solar Cells 2018; 186: 84- 91. KorsĂłs, F, Roszol, L, Jay, F, Veirman, J, Draoua, AD, Albaric, M, Szarvas, T, Kiss, Z, SzabĂł, A, SoczĂł, I, NĂĄdudvari, G, Laurent, N Efficiency limiting crystal defects in monocrystalline silicon and their characterization in production. Solar Energy Materials and Solar Cells 2018; 186: 217- 226. Li, P, Wang, K, Ren, S, Jiang, D, Shi, S, Tan, Y, Wang, F, Khan Asghar, HMN H Microstructure and conversion efficiency of multicrystalline silicon ingot prepared by upgraded metallurgical grade silicon. Solar Energy Materials and Solar Cells 2018; 186: 50- 56. Ling, ZP, Xin, Z, Kaur, G, Ke, C, Stangl, R Ultra-thin ALD-AlOx/PEDOT:PSS hole selective passivated contacts: an attractive low cost approach to increase solar cell performance. Solar Energy Materials and Solar Cells 2018; 185: 477- 486. LohmĂŒller, E, LohmĂŒller, S, Wöhrle, N, et al. BBr3 diffusion with second deposition for laser-doped selective emitters from borosilicate glass. Solar Energy Materials and Solar Cells 2018; 186: 291- 299. Modanese, C, Wagner, M, Wolny, F, Oehlke, A, Laine, HS, Inglese, A, Vahlman, H, Yli-Koski, M, Savin, H Impact of copper on light-induced degradation in Czochralski silicon PERC solar cells. Solar Energy Materials and Solar Cells 2018; 186: 373- 377. Niewelt, T, Richter, A, Kho, TC, Grant, NE, Bonilla, RS, Steinhauser, B, Polzin, JI, Feldmann, F, Hermle, M, Murphy, JD, Phang, SP, Kwapil, W, Schubert, MC Taking monocrystalline silicon to the ultimate lifetime limit. Solar Energy Materials and Solar Cells 2018; 185: 252- 259. Schindler, F, Fell, A, MĂŒller, R, Benick, J, Richter, A, Feldmann, F, Krenckel, P, Riepe, S, Schubert, MC, Glunz, SW Towards the efficiency limits of multicrystalline silicon solar cells. Solar Energy Materials and Solar Cells 2018; 185: 198- 204. Shanmugam, V, Khanna, A, Perez, DJ, et al. 21% efficient screen-printed n-type silicon wafer solar cells with implanted phosphorus front surface field. Solar Energy Materials and Solar Cells 2018; 186: 124- 130. Sperber, D, Herguth, A, Hahn, G. On improved passivation stability on highly-doped crystalline silicon and the long-term stability of regenerated Cz-Si. Solar Energy Materials and Solar Cells 2018; 185: 277- 282. Veith-Wolf, BA, SchĂ€fer, S, Brendel, R, Schmidt, J Reassessment of intrinsic lifetime limit in n-type crystalline silicon and implication on maximum solar cell efficiency. Solar Energy Materials and Solar Cells 2018; 186: 194- 199. Xu, M, Bearda, T, Filipič, M, Radhakrishnan, HS, Gordon, I, Szlufcik, J, Poortmans, J Simple emitter patterning of silicon heterojunction interdigitated back-contact solar cells using damage-free laser ablation. Solar Energy Materials and Solar Cells 2018; 186: 78- 83. 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Adv Funct Mater 2018; 28( 26): 1707126. Chen, WJ, Zhang, JW, Xu, GY, et al. A semitransparent inorganic perovskite film for overcoming ultraviolet light instability of organic solar cells and achieving 14.03% efficiency. Advanced Materials 2018; 30( 21): 1800855. Pei, C, Rui, W, Jingshuai, Z, et al. Ternary system with controlled structure: a new strategy toward efficient organic photovoltaics. Adv Mater 2018; 30( 8): 1705243 Song, W, Fan, X, Xu, BG, Yan, F, Cui, H, Wei, Q, Peng, R, Hong, L, Huang, J, Ge, Z All-solution-processed metal-oxide-free flexible organic solar cells with over 10% efficiency. Adv Mater 2018; 30( 26): 1800075. Zhang, SQ, Qin, YP, Zhu, J, Hou, J Over 14% efficiency in polymer solar cells enabled by a chlorinated polymer donor. Adv Mater 2018; 30( 20): 1800868. 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