Thomas W Gries, Davide Regaldo, Hans Köbler, Noor Titan Putri Hartono, Steven P Harvey, Maxim Simmonds, Chiara Frasca, Marlene Härtel, Gennaro V Sannino, Roberto Félix, Elif Hüsam, Ahmed Saleh, Regan G Wilks, Fengshuo Zu, Emilio Gutierrez-Partida, Zafar Iqbal, Zahra Loghman Nia, Fengjiu Yang, Paola Delli Veneri, Kai Zhu, Martin Stolterfoht, Marcus Bär, Stefan A Weber, Philip Schulz, Jean-Baptiste Puel, Jean-Paul Kleider, Eva Unger, Qiong Wang, Artem Musiienko, Antonio Abate
{"title":"稳定无机钙钛矿太阳能电池中TiO2电子萃取的共掺杂方法。","authors":"Thomas W Gries, Davide Regaldo, Hans Köbler, Noor Titan Putri Hartono, Steven P Harvey, Maxim Simmonds, Chiara Frasca, Marlene Härtel, Gennaro V Sannino, Roberto Félix, Elif Hüsam, Ahmed Saleh, Regan G Wilks, Fengshuo Zu, Emilio Gutierrez-Partida, Zafar Iqbal, Zahra Loghman Nia, Fengjiu Yang, Paola Delli Veneri, Kai Zhu, Martin Stolterfoht, Marcus Bär, Stefan A Weber, Philip Schulz, Jean-Baptiste Puel, Jean-Paul Kleider, Eva Unger, Qiong Wang, Artem Musiienko, Antonio Abate","doi":"10.1002/smsc.202400578","DOIUrl":null,"url":null,"abstract":"<p><p>Inorganic perovskite CsPbI<sub>3</sub> solar cells hold great potential for improving the operational stability of perovskite photovoltaics. However, electron extraction is limited by the low conductivity of TiO<sub>2</sub>, representing a bottleneck for achieving stable performance. In this study, a co-doping strategy for TiO<sub>2</sub> using Nb(V) and Sn(IV), which reduces the material's work function by 80 meV compared to Nb(V) mono-doped TiO<sub>2</sub>, is introduced. To gain fundamental understanding of the processes at the interfaces between the perovskite and charge-selective layer, transient surface photovoltage measurements are applied, revealing the beneficial effect of the energetic and structural modification on electron extraction across the CsPbI<sub>3</sub>/TiO<sub>2</sub> interface. Using 2D drift-diffusion simulations, it is found that co-doping reduces the interface hole recombination velocity by two orders of magnitude, increasing the concentration of extracted electrons by 20%. When integrated into n-i-p solar cells, co-doped TiO<sub>2</sub> enhances the projected <i>T</i> <sub>S80</sub> lifetimes under continuous AM1.5G illumination by a factor of 25 compared to mono-doped TiO<sub>2</sub>. This study provides fundamental insights into interfacial charge extraction and its correlation with operational stability of perovskite solar cells, offering potential applications for other charge-selective contacts.</p>","PeriodicalId":29791,"journal":{"name":"Small Science","volume":"5 7","pages":"2400578"},"PeriodicalIF":8.3000,"publicationDate":"2025-05-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12257902/pdf/","citationCount":"0","resultStr":"{\"title\":\"Co-Doping Approach for Enhanced Electron Extraction to TiO<sub>2</sub> for Stable Inorganic Perovskite Solar Cells.\",\"authors\":\"Thomas W Gries, Davide Regaldo, Hans Köbler, Noor Titan Putri Hartono, Steven P Harvey, Maxim Simmonds, Chiara Frasca, Marlene Härtel, Gennaro V Sannino, Roberto Félix, Elif Hüsam, Ahmed Saleh, Regan G Wilks, Fengshuo Zu, Emilio Gutierrez-Partida, Zafar Iqbal, Zahra Loghman Nia, Fengjiu Yang, Paola Delli Veneri, Kai Zhu, Martin Stolterfoht, Marcus Bär, Stefan A Weber, Philip Schulz, Jean-Baptiste Puel, Jean-Paul Kleider, Eva Unger, Qiong Wang, Artem Musiienko, Antonio Abate\",\"doi\":\"10.1002/smsc.202400578\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Inorganic perovskite CsPbI<sub>3</sub> solar cells hold great potential for improving the operational stability of perovskite photovoltaics. However, electron extraction is limited by the low conductivity of TiO<sub>2</sub>, representing a bottleneck for achieving stable performance. In this study, a co-doping strategy for TiO<sub>2</sub> using Nb(V) and Sn(IV), which reduces the material's work function by 80 meV compared to Nb(V) mono-doped TiO<sub>2</sub>, is introduced. To gain fundamental understanding of the processes at the interfaces between the perovskite and charge-selective layer, transient surface photovoltage measurements are applied, revealing the beneficial effect of the energetic and structural modification on electron extraction across the CsPbI<sub>3</sub>/TiO<sub>2</sub> interface. Using 2D drift-diffusion simulations, it is found that co-doping reduces the interface hole recombination velocity by two orders of magnitude, increasing the concentration of extracted electrons by 20%. When integrated into n-i-p solar cells, co-doped TiO<sub>2</sub> enhances the projected <i>T</i> <sub>S80</sub> lifetimes under continuous AM1.5G illumination by a factor of 25 compared to mono-doped TiO<sub>2</sub>. 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Co-Doping Approach for Enhanced Electron Extraction to TiO2 for Stable Inorganic Perovskite Solar Cells.
Inorganic perovskite CsPbI3 solar cells hold great potential for improving the operational stability of perovskite photovoltaics. However, electron extraction is limited by the low conductivity of TiO2, representing a bottleneck for achieving stable performance. In this study, a co-doping strategy for TiO2 using Nb(V) and Sn(IV), which reduces the material's work function by 80 meV compared to Nb(V) mono-doped TiO2, is introduced. To gain fundamental understanding of the processes at the interfaces between the perovskite and charge-selective layer, transient surface photovoltage measurements are applied, revealing the beneficial effect of the energetic and structural modification on electron extraction across the CsPbI3/TiO2 interface. Using 2D drift-diffusion simulations, it is found that co-doping reduces the interface hole recombination velocity by two orders of magnitude, increasing the concentration of extracted electrons by 20%. When integrated into n-i-p solar cells, co-doped TiO2 enhances the projected TS80 lifetimes under continuous AM1.5G illumination by a factor of 25 compared to mono-doped TiO2. This study provides fundamental insights into interfacial charge extraction and its correlation with operational stability of perovskite solar cells, offering potential applications for other charge-selective contacts.
期刊介绍:
Small Science is a premium multidisciplinary open access journal dedicated to publishing impactful research from all areas of nanoscience and nanotechnology. It features interdisciplinary original research and focused review articles on relevant topics. The journal covers design, characterization, mechanism, technology, and application of micro-/nanoscale structures and systems in various fields including physics, chemistry, materials science, engineering, environmental science, life science, biology, and medicine. It welcomes innovative interdisciplinary research and its readership includes professionals from academia and industry in fields such as chemistry, physics, materials science, biology, engineering, and environmental and analytical science. Small Science is indexed and abstracted in CAS, DOAJ, Clarivate Analytics, ProQuest Central, Publicly Available Content Database, Science Database, SCOPUS, and Web of Science.