平坦度(宇宙学)
材料科学
制作
合金
三元运算
表面粗糙度
石墨烯
表面光洁度
薄板电阻
外延
光电子学
纳米技术
单晶
单层
薄膜
Crystal(编程语言)
复合材料
三元合金
表面能
电子迁移率
晶体结构
量子
航程(航空)
纳米光刻
等效串联电阻
晶体生长
二进制数
作者
Jiaxin Shao,Sheng Li,Zhuofeng Shi,Yue Sun,Mengyuan Liu,Xiumei Ma,G.F. Gao,S. Wang,Yunsong Ge,Bo Jin,Dapeng Zhang,Weichuan Chen,Junhao Liao,Ali Cai,Bo Yang,Hao Li,Jincan Zhang,Xiucai Sun,Mengxi Liu,Li Lin
标识
DOI:10.1038/s41467-025-68196-0
摘要
Single-crystal alloy thin films (SATFs), featuring highly ordered atomic lattices and superior composition-dependent properties, hold great potential for applications including crystal epitaxy, surface catalysis, and energy conversion. However, their scalable synthesis and practical applications have been hindered by the difficulty of achieving wafer-scale single crystallinity, atomic-scale surface flatness, as well as flexible and uniform control of alloy composition. Here, we developed a surface-energy-compensated technique for synthesizing a series of wafer-scale binary and ternary SATFs with sub-nanometer roughness (minimum roughness lower than 0.2 nm) and uniform, controllable elemental composition with a wide range (5 ~ 50 at%). Furthermore, using CuPtNi(111) ternary SATFs as epitaxial substrates, we achieve wafer-scale synthesis of wrinkle-free graphene single crystals exhibiting fine electronic quality, including a uniform sheet resistance of 552 Ω sq−1 with 4.5% deviation, an ultrahigh carrier mobility up to over half a million cm2 V−1 s−1 at 1.7 K, and well-developed quantum plateaus. Single-crystal alloy thin films (SATFs) are appealing for applications in crystal epitaxy, surface catalysis, and energy conversion. Here, the authors report a method to synthesize wafer-scale binary and ternary SATFs with sub-nanometer roughness, which can be used as substrates for the growth of high-quality graphene single crystals.
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