奥里维里斯
插层(化学)
化学
亚稳态
超导电性
结晶学
氧化物
氧气
退火(玻璃)
化学物理
电子衍射
超晶格
层状结构
格子(音乐)
衍射
中子衍射
金属
铁磁性
同步加速器
晶体化学
八面体
X射线晶体学
石墨烯
三元运算
硫族元素
晶体结构
铌
铋
磁性
凝聚态物理
纳米技术
过渡金属
作者
Dan Ferenc Segedin,Jinkwon Kim,H. LaBollita,Nicole K. Taylor,Kyeong-Yoon Baek,Suk Hyun Sung,Ari B. Turkiewicz,Grace A. Pan,Anquan Jiang,Maria Bambrick-Santoyo,Tobias Schwaigert,Casey K. Kim,Anirudh Tenneti,Alexander J. Grutter,Shin Muramoto,Alpha T. N’Diaye,Ismail El Baggari,Donald A. Walko,Charles M. Brooks,A. S. BOTANA
摘要
Layered perovskites─including the Dion-Jacobson, Ruddlesden-Popper, and Aurivillius families─exhibit a wide range of correlated electron phenomena, from high-temperature superconductivity to multiferroicity. Here, we report a new family of layered perovskites realized through topochemical oxidation of Lan+1NinO3n+1+δ (n = 1-4) Ruddlesden-Popper nickelate thin films. Postgrowth ozone annealing induces a substantial c-axis expansion─17.8% for La2NiO4+δ (n = 1)─that monotonically decreases with increasing n. Surface synchrotron X-ray diffraction and coherent Bragg rod analysis (COBRA) reveal that this structural expansion arises from the intercalation of approximately δ ≈ 0.7-1.0 oxygen atoms into interstitial sites within the rock salt spacer layers, far exceeding the previous record of δ ≈ 0.3 for any Ruddlesden-Popper oxide. These oxygen-intercalated phases form a new class of layered perovskites with a spacer layer composition intermediate between the Ruddlesden-Popper and Aurivillius phases. Furthermore, oxygen intercalation induces metallicity, enhances nickel-oxygen hybridization, and suppresses oxygen octahedral rotations, a feature associated with high-temperature superconductivity in Ruddlesden-Popper nickelates. Our work establishes topochemical oxidation as a powerful approach to accessing highly oxidized, metastable phases across a broad range of layered oxide systems, offering new platforms to engineer electronic properties via intercalation chemistry.
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