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Ballistic Thermal Transport in Carbyne and Cumulene with Micron-Scale Spectral Acoustic Phonon Mean Free Path

机译:微米级光谱声子平均自由程在卡宾和异丙苯中的弹道热传输

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摘要

The elastic modulus of carbyne, a one-dimensional carbon chain, was recently predicted to be much higher than graphene. Inspired by this discovery and the fundamental correlation between elastic modulus and thermal conductivity, we investigate the intrinsic thermal transport in two carbon allotropes: carbyne and cumulene. Using molecular dynamics simulations, we discover that thermal conductivities of carbyne and cumulene at the quantum-corrected room temperature can exceed 54 and 148 kW/m/K, respectively, much higher than that for graphene. Such conductivity is attributed to high phonon energies and group velocities, as well as reduced scattering from non-overlapped acoustic and optical phonon modes. The prolonged spectral acoustic phonon lifetime of 30–110 ps and mean free path of 0.5–2.5 μm exceed those for graphene, and allow ballistic phonon transport along micron-length carbon chains. Tensile extensions can enhance the thermal conductivity of carbyne due to the increased phonon density of states in the acoustic modes and the increased phonon lifetime from phonon bandgap opening. These findings provide fundamental insights into phonon transport and band structure engineering through tensile deformation in low-dimensional materials, and will inspire studies on carbyne, cumulene, and boron nitride chains for their practical deployments in nano-devices.
机译:最近预测,一维碳链碳炔的弹性模量比石墨烯高得多。受这一发现以及弹性模量和导热系数之间基本关系的启发,我们研究了两种碳同素异形体:碳炔和异丙苯中的固有热传递。使用分子动力学模拟,我们发现在量子校正的室温下,碳炔和异丙苯的热导率分别可以超过54和148 kW / m / K,远高于石墨烯。这样的导电性归因于高声子能量和群速度,以及来自非重叠声和光声子模式的减少的散射。光谱声子的寿命延长了30-110 ps,平均自由程为0.5-2.5μm,超过了石墨烯,并且允许弹道声子沿微米长度的碳链传输。由于在声模中态的声子密度增加以及从声子带隙开口而来的声子寿命增加,所以拉伸伸长可以增强卡宾的导热性。这些发现为低维材料中的拉伸变形提供了声子传输和能带结构工程的基础见解,并将激发对碳炔,异丙苯和氮化硼链在纳米器件中的实际应用的研究。

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