![]() ; Robert, Erika ![]() ![]() in Thin Solid Films (2019), 669 Detailed reference viewed: 243 (3 UL)![]() Meadows, Helen ![]() ![]() ![]() Scientific Conference (2015) Detailed reference viewed: 238 (4 UL)![]() ; Mousel, Marina ![]() ![]() in JOURNAL OF APPLIED PHYSICS (2015), 118 Detailed reference viewed: 225 (6 UL)![]() Berg, Dominik ![]() ![]() ![]() in Thin Solid Films (2014), 569 Detailed reference viewed: 162 (1 UL)![]() Djemour, Rabie ![]() ![]() ![]() in Journal of Applied Physics (2014), 116 Detailed reference viewed: 194 (8 UL)![]() Redinger, Alex ![]() ![]() ![]() Scientific Conference (2013, June) Detailed reference viewed: 193 (5 UL)![]() Siebentritt, Susanne ![]() ![]() ![]() in Solar Energy Materials and Solar Cells (2013) Detailed reference viewed: 233 (5 UL)![]() Redinger, Alex ![]() ![]() ![]() in Progress in Photovoltaics (2013), 22(1), 51-57 Cu2ZnSnSe4 (CZTSe) thin film solar cells have been produced via co-evaporation followed by a high-temperature annealing. In order to reduce the decomposition of the CZTSe, a SnSe2 capping layer has been ... [more ▼] Cu2ZnSnSe4 (CZTSe) thin film solar cells have been produced via co-evaporation followed by a high-temperature annealing. In order to reduce the decomposition of the CZTSe, a SnSe2 capping layer has been evaporated onto the absorber prior to the high-temperature treatment. This eliminates the Sn losses due to SnSe evaporation. A solar cell efficiency of 5.1 could be achieved with this method. Moreover, the device does not suffer from high series resistance, and the dominant recombination pathway is situated in the absorber bulk. Finally different illumination conditions (white light, red light, and yellow light) reveal a strong loss in fill factor if no carriers are generated in the CdS buffer layer. This effect, known as red-kink effect, has also been observed in the closely related Cu(In,Ga)Se-2 thin film solar cells. Copyright (c) 2013 John Wiley Sons, Ltd. [less ▲] Detailed reference viewed: 336 (12 UL)![]() Steichen, Marc ![]() ![]() ![]() in The Journal of Physical Chemistry (2013) Detailed reference viewed: 190 (12 UL)![]() Djemour, Rabie ![]() ![]() ![]() in Applied Physics Letters (2013), 102 Detailed reference viewed: 237 (14 UL)![]() Djemour, Rabie ![]() ![]() ![]() in Optics Express (2013) Detailed reference viewed: 189 (6 UL)![]() ; Djemour, Rabie ![]() ![]() in Applied Physics Letters (2012), 100 Detailed reference viewed: 244 (6 UL)![]() Gütay, Levent ![]() ![]() ![]() in Applied Physics Letters (2012), 100 Detailed reference viewed: 190 (4 UL)![]() Gutay, Levent ![]() ![]() ![]() in Physical Review (2012), 86 Detailed reference viewed: 229 (10 UL)![]() ; Djemour, Rabie ![]() ![]() in Thin Solid Films (2012), 520 Detailed reference viewed: 192 (4 UL)![]() Regesch, David ![]() ![]() ![]() in Applied Physics Letters (2012), 101 Detailed reference viewed: 211 (10 UL)![]() Gütay, Levent ![]() ![]() in Journal of Crystal Growth (2011), (315), 82-86 Detailed reference viewed: 162 (5 UL)![]() ; ; et al in Thin Solid Films (2011), 519 Detailed reference viewed: 113 (2 UL)![]() Redinger, Alex ![]() ![]() in IEEE Journal of Photovoltaics (2011) Detailed reference viewed: 193 (5 UL)![]() Larsen, Jes K. ![]() ![]() ![]() in Thin Solid Films (2011), 519 Detailed reference viewed: 168 (4 UL) |
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