自旋电子学
材料科学
铁磁性
超级交换
石墨烯
纳米技术
氧化物
未成对电子
兴奋剂
超临界流体
磁化
应变工程
化学工程
化学物理
凝聚态物理
核磁共振
化学
光电子学
电子顺磁共振
工程类
物理
有机化学
磁场
冶金
量子力学
硅
出处
期刊:Small
[Wiley]
日期:2025-06-16
卷期号:21 (32): e2504839-e2504839
被引量:2
标识
DOI:10.1002/smll.202504839
摘要
Supercritical carbon dioxide (SC CO₂), as a green solvent, demonstrates unique advantages in the synthesis and property modulation of 2D magnetic materials. This review systematically summarizes the synergistic strategies of SC CO₂, including defect engineering, chemical doping, lattice strain, and interface control, to effectively induce and enhance room-temperature ferromagnetism (RT FM) in 2D materials. Research indicates that SC CO₂ treatment significantly enhances magnetic performance by breaking chemical bonds (e.g., introducing unpaired electrons in B-doped graphene oxide with a saturation magnetization (Ms) of 1.71 emu g⁻¹) or regulating oxygen vacancies (e.g., achieving Ms = 0.3492 emu g⁻¹ in SrTiO3 perovskite). Furthermore, SC CO₂ optimizes spin configurations via phase transitions (e.g., rhombohedral-to-cubic transformation in BiFeO3) and lattice strain, thereby strengthening superexchange interactions. Despite breakthroughs in graphene derivatives, transition metal oxides (e.g., VO₂ nanosheets), and perovskite systems, challenges remain in understanding microscopic mechanisms, ensuring material stability, and enabling scalable production. Future efforts should integrate advanced characterization and computational modeling to unravel SC CO₂-material interactions, advancing applications in spintronics and quantum devices.
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