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Life cycle assessment of hole transport free planara??mesoscopic perovskite solar cells

DOI:10.1063/1.5129784 期刊:Journal of Renewable and Sustainable Energy 出版年份:2020 更新时间:2025-09-23 15:19:57
摘要: Organo-metal lead halide perovskite solar cells (PSCs) attract attention due to their low cost and high power conversion efficiency. Some weak points of this technology are short lifetime, instability, and expensive metal electrode deposition. Eliminating the unstable hole transport layer (HTL) and using carbon-based materials as the counter electrode would address both. In this work, we present a cradle-to-gate life cycle assessment of two HTL-free PSC designs, which use solution phase deposition to achieve mesoscopic and planar structures. Environmental impacts of producing 1 m2 PSCs are converted to impacts per kWh electricity generation assuming 5 years of operational lifetime. We find that major impacts come from fluorine doped tin oxide (FTO) glass patterning due to the electricity consumption of FTO patterning and glass cleaning processes. Even though the electricity consumption when manufacturing both PSCs is similar, their different efficiencies make the environmental impacts per kWh of electricity higher for the mesoscopic PSC than for the planar PSC. Energy payback time values of planar PSCs and mesoscopic PSCs are 0.58 and 0.74 years, respectively, and these values are shorter than those of commercial first and second generation solar cells. However, the global warming potential (GWP) values of planar and mesoscopic PSCs are 75 and 94 g CO2-eq/kWh, respectively, and these values are still higher than those of commercial solar cells. To reach the GWP of commercial cells, the operational lifetime would have to be 8 and 10 years for planar and mesoscopic PSCs, respectively.
作者: Huseyin Sarialtin,Roland Geyer,Ceylan Zafer
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To quantify the potential environmental impacts of two HTL-free perovskite solar cells (PSCs) designs, comparing their environmental performance with commercial photovoltaic technologies.

The environmental assessment shows that the majority of impacts come from electricity consumption, particularly in FTO glass patterning and annealing processes. Planar PSCs have lower environmental impacts per kWh than mesoscopic PSCs due to higher conversion efficiency. However, both designs have higher global warming potential (GWP) than commercial PVs. Increasing the operational lifetime of PSCs is crucial to reduce their GWP to competitive levels. The study suggests that planar PSCs need at least 8 years and mesoscopic PSCs at least 10 years of operational lifetime to match the GWP of commercial PVs.

The study is limited to cradle-to-gate assessment, excluding downstream processes such as balance of system production, PV system assembly, operation, and maintenance. The operational lifetime of PSCs is assumed to be 5 years, which may not reflect actual field performance. The study also notes the need for further research on methods suitable for serial production, such as slot die coating.

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