纳米技术
封装(网络)
材料科学
纳米管
量子点
自旋电子学
数码产品
碳纳米管
卤化物
化学
计算机科学
铁磁性
物理
无机化学
物理化学
量子力学
计算机网络
作者
Yangjin Lee,U Hyeok Choi,Kwanpyo Kim,Alex Zettl
标识
DOI:10.1186/s40580-024-00460-3
摘要
Abstract Encapsulation of various materials inside nanotubes has emerged as an effective method in nanotechnology that facilitates the formation of novel one-dimensional (1D) structures and enhances their functionality. Because of the effects of geometrical confinement and electronic interactions with host nanotubes, encapsulated materials often exhibit low-dimensional polymorphic structures that differ from their bulk forms. These polymorphs exhibit unique properties, including altered electrical, optical, and magnetic behaviors, making them promising candidates for applications in electronics, energy storage, spintronics, and quantum devices. This review explores recent advancements in the encapsulation of a wide range of materials such as organic molecules, elemental substances, metal halides, metal chalcogenides, and other complex compounds. In particular, we focus on novel polymorphs formed through the geometrical confinement effect within the nanotubes. The atomic structure, other key properties, and potential applications of these encapsulated materials are discussed, highlighting the impact of nanotube encapsulation on their functionalities. Graphical Abstract
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