纳米结构
碳量子点
纳米技术
量子
碳纤维
材料科学
量子点
化学物理
化学
物理
量子力学
复合数
复合材料
作者
Wenhui Fang,Lishu Zhang,Junnan Guo,Jian Huang,Jifeng Tang,Yanyan Jiang,Weikang Wu,Hui Li
摘要
The breakthrough synthesis of cyclo[18]carbon (C18) has ignited considerable interest in its structural topology and technological potential. The molecule's fully conjugated electronic structure positions it as an exceptional candidate for functional molecular electronics, while its inherent chemical versatility enables the design of tailored derivatives. Using first-principles calculations combining density functional theory with non-equilibrium Green's function formalism, we systematically investigate quantum transport in C18/C36-based molecular junctions interconnected via monatomic carbon chain electrodes. Our calculation results reveal distinct quantum transport behaviors across derivatives, including linear Ohmic conduction, pronounced negative differential resistance, and molecular switching characteristics. The mechanistic analysis demonstrates that the spatial delocalization and energy-level broadening of frontier molecular orbitals fundamentally dictate these transport regimes. This work establishes critical structure-transport correlations and provides a design framework for developing advanced all-carbon molecular devices based on topologically tailored cyclocarbon nanostructures.
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