Chun Kichan, Lee Yeeun, Jeong Jian, Kim Gunn, Jang Soonmin
Department of Physics and Astronomy, Sejong University Seoul 05006 South Korea
Department of Chemistry, Sejong University Seoul 05006 South Korea
RSC Adv. 2025 Aug 21;15(36):29743-29752. doi: 10.1039/d5ra04968g. eCollection 2025 Aug 18.
The confinement of water molecules within nanostructures is a subject of intense research. Unlike carbon nanotubes (CNTs), carbon nanocones (CNCs) possess a conically expanding cross section, providing significantly different confinement environments within the CNT. In this study, we employed classical molecular dynamics simulations to investigate how the structural and dynamic properties change along the CNC axis, from the base to the tip, and from the water-carbon interface to the interior of CNCs, under varying tip angles. The simulations reveal a high sensitivity of the nanoconfined water structure to the tip angle. Notably, local confinement within CNCs influences water structure up to 15 Å away. The water density exhibits strong modulation in a layered fashion near the CNC interface, depending on the tip angle, indicating complex geometric dependencies. These findings offer new insights into water-CNC interactions and nanoscale confinement, with implications for understanding the unique behavior of water and its potential applications in nanostructured systems.
水分子在纳米结构中的受限是一个深入研究的课题。与碳纳米管(CNT)不同,碳纳米锥(CNC)具有呈锥形扩展的横截面,在碳纳米管内提供了显著不同的受限环境。在本研究中,我们采用经典分子动力学模拟来研究在不同顶角下,结构和动力学性质如何沿着碳纳米锥的轴,从底部到尖端,以及从水 - 碳界面到碳纳米锥内部发生变化。模拟结果揭示了纳米受限水结构对顶角具有高度敏感性。值得注意的是,碳纳米锥内的局部受限对距离达15 Å的水结构都有影响。在碳纳米锥界面附近,水密度根据顶角以分层方式呈现出强烈调制,表明存在复杂的几何依赖性。这些发现为水 - 碳纳米锥相互作用和纳米尺度受限提供了新的见解,对理解水的独特行为及其在纳米结构系统中的潜在应用具有重要意义。