碳纳米管
激子
材料科学
化学物理
分子间力
量子
偶极子
电子
量子点
分子物理学
扩散
分子动力学
纳米技术
凝聚态物理
分子
光谱学
量子隧道
动量(技术分析)
电子转移
角动量
黛比
旋转扩散
富勒烯
碳纳米管的力学性能
水溶液
荧光
碳纳米管的光学性质
航程(航空)
氢
纳米流体学
作者
Tanuja Kistwal,Krishan Kanhaiya,Adrian Buchmann,Chen Ma,Jana Nikolić,Julia Ackermann,Phillip Galonska,Sanjana S. Nalige,Vahideh Sardari,Aishwarya Sudarsan,Martina Havenith,Marialore Sulpizi,Sebastian Kruss
出处
期刊:Nature
[Nature Portfolio]
日期:2026-06-10
被引量:1
标识
DOI:10.1038/s41586-026-10632-2
摘要
Abstract Friction slows down moving objects at both macroscopic and microscopic scales 1 . At the electronic level, quantum friction describes direct transfer of momentum between a liquid and the electrons of a solid 2 . Owing to its microscopic nature, this phenomenon remains experimentally challenging to capture 3 . Here we show that near-infrared fluorescent single-walled carbon nanotubes (SWCNTs) exhibit light-induced quantum friction in water. It is measured by observing an excitation-power-dependent linear decrease of around 50% in the diffusion constants of functionalized SWCNTs in aqueous solution. This effect disappears when excitons are localized, as in the case of SWCNTs with quantum defects. We further show that the chemical manipulation of exciton concentration by molecules that increase or decrease SWCNT fluorescence also modulates the diffusion constant by up to a factor of 2. Optical pump terahertz (THz) probe spectroscopy shows an instantaneous response (around 30 cm −1 ) that we assign to direct exciton–water coupling in the range of water Debye modes. It is followed by an increasing (>100 ps) response in the range of intermolecular translational modes of the hydrogen bond network of water (>100 cm −1 ), resembling heating. Classical molecular dynamics simulations further support a mechanism in which the fluctuating dipole moments of excitons create frictional forces. These findings establish light-induced quantum friction between excitons in SWCNTs and water and show that electronic excitations can be used to control nanoscale motion and fluid properties.
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