Advanced Technology Development Centre and ‡Civil Engineering Department, Indian Institute of Technology Kharagpur , Kharagpur, WB 721302, India.
Nano Lett. 2017 Apr 12;17(4):2131-2137. doi: 10.1021/acs.nanolett.6b04310. Epub 2017 Mar 1.
Phononic coupling can have a significant role in friction between nanoscale surfaces. We find frictional dissipation per atom in carbon nanotube (CNT) oscillators to depend significantly on interface features such as contact area, commensurability, and by end-capping of the inner core. We perform large-scale phonon wavepacket MD simulations to study phonon coupling between a 250 nm long (10,10) outer tube and inner cores of four different geometries. Five different phonon polarizations known to have dominant roles in thermal transport are selected, and transmission coefficient plots for a range of phonon energies along with phonon scattering dynamics at specific energies are obtained. We find that the length of interface affects friction only through LA phonon scattering and has a significant nonlinear effect on total frictional force. Incommensurate contact does not always give rise to superlubricity: the net effect of two competing interaction mechanisms shown by longitudinal and transverse phonons decides the role of commensurability. Capping of the core has no effect on acoustic phonons but destroys the coherence of transverse optical phonons and creates diffusive scattering. In contrast, the twisting and radial breathing phonon modes have perfect transmission at all energies and can be deemed as the enablers of ultralow friction in CNT oscillators. Our work suggests that tuning of interface geometries can give rise to desirable friction properties in nanoscale devices.
声子耦合在纳米尺度表面之间的摩擦中可能起着重要作用。我们发现,碳纳米管(CNT)振荡器中每个原子的摩擦耗散显著依赖于界面特征,如接触面积、协调性以及内核的端盖。我们进行了大规模的声子波包分子动力学模拟,以研究 250nm 长的(10,10)外管与四个不同几何形状的内核对之间的声子耦合。选择了五种已知在热传输中起主要作用的不同声子极化,并获得了一系列声子能量的透射系数图以及特定能量下的声子散射动力学。我们发现,界面长度仅通过 LA 声子散射影响摩擦,并且对总摩擦力具有显著的非线性影响。非协调接触并不总是导致超滑:纵向和横向声子所示的两种竞争相互作用机制的净效应决定了协调性的作用。内核的端盖对声波没有影响,但会破坏横向光学声子的相干性并产生扩散散射。相比之下,扭转和径向呼吸声子模式在所有能量下都具有完美的透射率,可以被视为 CNT 振荡器中超低摩擦的实现者。我们的工作表明,界面几何形状的调整可以在纳米尺度器件中产生理想的摩擦特性。