材料科学
锑
串联
光电子学
氧化锡
钙钛矿(结构)
锡
能量转换效率
太阳能电池
纳米晶材料
氧化物
氧化锑
溅射
原子层沉积
氧化铟锡
图层(电子)
纳米技术
光伏
等离子太阳电池
光电流
光伏系统
钙钛矿太阳能电池
硅
氧化镍
量子点太阳电池
无机化学
作者
Biao Shi,Zetong Sunli,Ji Liu,Wei Han,Rui Kong,Cong Sun,Ying Liu,Yuan Luo,X. C. Wang,Zhi Zhang,Dekun Zhang,Xuan Du,Fu Zhang,Miao Yang,Yongcai He,Bo He,Xixiang Xu,Rui Xia,Xu Zhang,Yifeng Chen
标识
DOI:10.1038/s41467-026-70848-8
摘要
Abstract Atomic layer-deposited tin oxide serves as an effective buffer layer in perovskite/silicon tandem solar cells due to its efficient charge extraction and sputtering tolerance. Nevertheless, its unavoidable chemical erosion effect of atomic layer-deposited tin oxide on perovskite requires thicker fullerene charge transport layers, leading to increased parasitic optical absorption. Herein, we firstly integrated thermal evaporated antimony oxide into solar cells to effectively replace atomic layer-deposited tin oxide, enabling a thinner fullerene to minimize optical losses and prevent damage to the perovskite. The unique amorphous-nanocrystalline structure of, antimony oxide facilitates ultrafast carrier transport via its embedded nanocrystalline network. The antimony oxide-based tandem solar cells demonstrated a significant improvement in power conversion efficiency compared to tin oxide-based devices, primarily due to an enhanced short-circuit current density of approximately 1 mA/cm² in the perovskite top cell. Remarkably, even at 64.64 cm 2 scale, the antimony oxide-based encapsulated large-area tandem solar cell retains an efficiency of 28.16% (with a certified value of 27.70%), attesting the scalability of this approach.
科研通智能强力驱动
Strongly Powered by AbleSci AI