材料科学
钙钛矿(结构)
非阻塞I/O
钝化
异质结
结晶度
氧化物
卤化物
化学工程
串联
光伏
价(化学)
能量转换效率
晶界
三苯基氧化膦
路易斯酸
偶极子
溶解度
微晶
科技与社会
纳米技术
钙钛矿太阳能电池
图层(电子)
奥里维里斯
呋喃
光伏系统
光电子学
石墨烯
极地的
无机化学
作者
JeeHee Hong,Juan Anthony Prayogo,Soobin Heo,Jae Sung Yun,Dong Ryeol Whang,Dong Wook Chang,Hui Joon Park
摘要
ABSTRACT Achieving high performance in wide‐bandgap (WBG) perovskite solar cells (PSCs) is crucial for tandem architectures beyond the Shockley–Queisser limit, yet interfacial nonradiative recombination—particularly at perovskite/charge transport layer (CTL) interfaces—remains a central bottleneck. We introduce phosphine‐oxide interlayers whose P═O groups coordinate undercoordinated Pb 2+ sites in WBG perovskites. By tuning the aryl and furyl substituents, we modulate the P═O Lewis basicity to enable targeted passivation at the buried NiO x hole‐transport layer (HTL)/perovskite interface in p‐i‐n PSCs. In addition, the dipoles formed by the polar groups reinforce the built‐in electric field, promoting more efficient charge extraction. The interlayers also smooth and render the underlying NiO x HTL surface more hydrophobic, consequently yielding perovskite films with higher crystallinity and reduced defect densities, which suppress nonradiative losses. Excellent solubility supports scalable solution processing. Tris(furan‐2‐yl)phosphine oxide (TFPO) outperforms triphenylphosphine oxide (TPPO), attributed to dual coordination sites (P═O and furan oxygen), greater effective Lewis basicity from electron‐rich furyl groups, more favorable energy‐level alignment with the perovskite valence band, and superior surface coverage from the compact furan motif. Devices incorporating TFPO achieve a power‐conversion efficiency of 21.0%, versus 18.3% for controls without interlayers. These results validate a molecularly engineered interfacial strategy for high‐performance WBG PSCs.
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