KIER achieves world-record 26.7% efficiency in perovskite/CIGS tandem solar cells – EurekAlert!

Officially certified by Fraunhofer ISE in Germany and listed in NLR’s Best Research-Cell Efficiencies Chart
National Research Council of Science & Technology

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Perovskite/CIGS tandem solar cell developed by the KIER research team

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Perovskite/CIGS tandem solar cell developed by the KIER research team
Credit: KOREA INSTITUTE OF ENERGY RESEARCH
 The Photovoltaic Research Department of the Korea Institute of Energy Research (KIER) achieved a certified world-record efficiency of 26.7% for perovskite/CIGS tandem solar cells, opening a new chapter in next-generation thin-film photovoltaics.
 This achievement was officially certified by the Fraunhofer Institute for Solar Energy Systems (ISE) in Germany and listed in the Best Research-Cell Efficiencies Chart published by the US National Laboratory of the Rockies (NLR, formerly NREL).
 The previous world-record efficiency of 26.3%, set a year earlier by a joint research team from Seoul National University and the Korea Institute of Science and Technology (KIST), was surpassed by another Korean research team at KIER, demonstrating the country's leading role in next-generation thin-film solar cell technology. 
 Silicon solar cells, currently the most widely used solar cell technology, have already reached technological maturity, leaving limited room for further efficiency improvements due to fundamental physical limitations. Against this backdrop, tandem solar cells are emerging as a promising next-generation solution for high-efficiency photovoltaics. This technology uses multiple solar cells with different characteristics stacked in layers to capture a broader range of sunlight wavelengths.
 The perovskite/CIGS tandem solar cells developed by the KIER research team have a perovskite cell at the top and a CIGS cell at the bottom. This unique configuration enables the two cells to absorb different wavelengths of sunlight simultaneously. Since both perovskite and CIGS are well suited for thin-film processing, the technology combines high efficiency, light weight, and flexibility.
 Assembling the two cells may, however, degrade the perovskite light-absorbing layer. In addition, some cell layers may absorb unwanted light, reducing the overall efficiency. To address these challenges, the KIER research team conducted a comprehensive analysis of the root causes of such efficiency losses. As a result, they developed an advanced interfacial layer material and processing technology to mitigate potential damage to the perovskite layer. The team also successfully minimized undesired light absorption and potential photocurrent loss by optimizing the structure of the top transparent electrode and charge transport layer.
 This approach resulted in a laboratory-measured efficiency of 27% and a Fraunhofer ISE-certified efficiency of 26.7%.
 The developed technology is expected to increase electricity generation per unit area and thereby expand the potential applications of photovoltaic power generation. Furthermore, owing to their lightweight and flexible thin-film design, they are promising not only for buildings and automobiles but also as power sources for small satellites and space-based data centers for future space applications, where weight and space constraints are critical.
 Inyoung Jeong, a senior researcher at KIER who led the research, said, "This achievement is significant in that both cell efficiency and stability can be enhanced by minimizing potential interfacial and optical losses during the integration of perovskite and CIGS. The resulting efficiency was also officially certified by a world-renowned institute and recognized as a world-record performance, underscoring Korea's technological competitiveness." 
 Going forward, the research team will focus on ensuring that large-area modules achieve the same efficiency as the small-area devices developed in this study. They will collaborate with industry partners interested in mass production and commercialization and pursue technology transfer. In the long term, they will expand the technology to next-generation space solar cells capable of reliable operation in space due to their light weight and high efficiency.
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Media Contact
Jungmin Lee
National Research Council of Science & Technology
ljm@nst.re.kr

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Korea Institute of Energy Research
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