Yue Qiang, Huaiman Cao, Yuzhen Pan, Yi Chi, Liangyu Zhao, Yingguo Yang, Hai-Bei Li, Yan Gao, Licheng Sun, Ze Yu
{"title":"基于铜萘酞菁的空穴传输材料,用于高性能和热稳定的过氧化物太阳能电池","authors":"Yue Qiang, Huaiman Cao, Yuzhen Pan, Yi Chi, Liangyu Zhao, Yingguo Yang, Hai-Bei Li, Yan Gao, Licheng Sun, Ze Yu","doi":"10.1007/s11426-024-2047-7","DOIUrl":null,"url":null,"abstract":"<div><p>Metal phthalocyanines (MPcs) have gained considerable research attention as hole-transport materials (HTMs) in perovskite solar cells (PSCs) because of their superb stability. However, the photovoltaic performance of MPc-based HTMs in PSCs is still lagging behind their small molecule and polymeric counterparts, largely due to their relatively low hole mobility. Here, we report for the first time the application of a copper naphthalocyanine derivative (namely <i>t</i>Bu-CuNc) as a hole-transport material (HTM) in perovskite solar cells (PSCs), and systematically study its optoelectronic and photovoltaic property compared with its CuPc analog (tBu-CuPc). Combined experiments disclose that the extension of <i>π</i>-conjugation from Pc to Nc core leads to not only an enhanced hole-carrier mobility associated with a stronger intermolecular interaction, but also an elevated glass transition temperature (<i>T</i><sub>g</sub>) of 252 °C. The resultant PSCs employing <i>t</i>Bu-CuNc deliver an excellent power conversion efficiency of 24.03%, which is the record efficiency reported for metal complex-based HTMs in PSCs. More importantly, the encapsulated <i>t</i>Bu-CuNc-based devices also show dramatically improved thermal stability than the devices using the well-known Spiro-OMeTAD, with a <i>T</i><sub>80</sub> lifetime for more than 1,000 h under damp-heat stress. This study unfolds a new avenue for developing efficient and stable HTMs in PSCs.\n</p><div><figure><div><div><picture><source><img></source></picture></div></div></figure></div></div>","PeriodicalId":772,"journal":{"name":"Science China Chemistry","volume":"67 8","pages":"2701 - 2709"},"PeriodicalIF":10.4000,"publicationDate":"2024-07-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Copper naphthalocyanine-based hole-transport material for high-performance and thermally stable perovskite solar cells\",\"authors\":\"Yue Qiang, Huaiman Cao, Yuzhen Pan, Yi Chi, Liangyu Zhao, Yingguo Yang, Hai-Bei Li, Yan Gao, Licheng Sun, Ze Yu\",\"doi\":\"10.1007/s11426-024-2047-7\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Metal phthalocyanines (MPcs) have gained considerable research attention as hole-transport materials (HTMs) in perovskite solar cells (PSCs) because of their superb stability. However, the photovoltaic performance of MPc-based HTMs in PSCs is still lagging behind their small molecule and polymeric counterparts, largely due to their relatively low hole mobility. Here, we report for the first time the application of a copper naphthalocyanine derivative (namely <i>t</i>Bu-CuNc) as a hole-transport material (HTM) in perovskite solar cells (PSCs), and systematically study its optoelectronic and photovoltaic property compared with its CuPc analog (tBu-CuPc). Combined experiments disclose that the extension of <i>π</i>-conjugation from Pc to Nc core leads to not only an enhanced hole-carrier mobility associated with a stronger intermolecular interaction, but also an elevated glass transition temperature (<i>T</i><sub>g</sub>) of 252 °C. The resultant PSCs employing <i>t</i>Bu-CuNc deliver an excellent power conversion efficiency of 24.03%, which is the record efficiency reported for metal complex-based HTMs in PSCs. More importantly, the encapsulated <i>t</i>Bu-CuNc-based devices also show dramatically improved thermal stability than the devices using the well-known Spiro-OMeTAD, with a <i>T</i><sub>80</sub> lifetime for more than 1,000 h under damp-heat stress. 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Copper naphthalocyanine-based hole-transport material for high-performance and thermally stable perovskite solar cells
Metal phthalocyanines (MPcs) have gained considerable research attention as hole-transport materials (HTMs) in perovskite solar cells (PSCs) because of their superb stability. However, the photovoltaic performance of MPc-based HTMs in PSCs is still lagging behind their small molecule and polymeric counterparts, largely due to their relatively low hole mobility. Here, we report for the first time the application of a copper naphthalocyanine derivative (namely tBu-CuNc) as a hole-transport material (HTM) in perovskite solar cells (PSCs), and systematically study its optoelectronic and photovoltaic property compared with its CuPc analog (tBu-CuPc). Combined experiments disclose that the extension of π-conjugation from Pc to Nc core leads to not only an enhanced hole-carrier mobility associated with a stronger intermolecular interaction, but also an elevated glass transition temperature (Tg) of 252 °C. The resultant PSCs employing tBu-CuNc deliver an excellent power conversion efficiency of 24.03%, which is the record efficiency reported for metal complex-based HTMs in PSCs. More importantly, the encapsulated tBu-CuNc-based devices also show dramatically improved thermal stability than the devices using the well-known Spiro-OMeTAD, with a T80 lifetime for more than 1,000 h under damp-heat stress. This study unfolds a new avenue for developing efficient and stable HTMs in PSCs.
期刊介绍:
Science China Chemistry, co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China and published by Science China Press, publishes high-quality original research in both basic and applied chemistry. Indexed by Science Citation Index, it is a premier academic journal in the field.
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