论文标题

受支持和包含的单层和双层MOS $ _2 $的导热率降低

Reduced Thermal Conductivity of Supported and Encased Monolayer and Bilayer MoS$_2$

论文作者

Gabourie, Alexander J., Suryavanshi, Saurabh V., Farimani, Amir Barati, Pop, Eric

论文摘要

原子较薄的二维(2D)材料的电和热性能受其环境的影响,例如通过远程声子散射或介电筛选。但是,尽管众所周知,石墨烯的迁移率和热导率(TC)在基板上降低,但在2D半导体(例如MOS $ _2 $)中,这些效果的探索程度要少得多。在这里,我们使用分子动力学来了解单层(1L)和双层(2L)MOS $ _2 $的TC变化,通过比较悬浮,支撑和包含的结构。单层MOS $ _2 $的TC从〜117 wm $^{ - 1} $ k $^{ - 1} $暂停时,至〜31 wm $^{ - 1} $^{ - 1} $ k $^{ - 1} $,由Sio $ _2 $ sio $ _2 $,在300 k. in 300k。 wm $^{ - 1} $ k $^{ - 1} $。相比之下,2L MOS $ _2 $的TC并没有大幅度降低,在支撑和包裹时,TC均比1L高50%。这些效果是由于语音散射带有基板的远程振动模式,该模式部分以2L MOS $ _2 $进行了筛选。我们还在广泛的温度(300至700 K)和缺陷密度(最高5 $ \ times $ 10 $^{13} $ cm $^{ - 2} $)中检查了1L MOS $ _2 $的TC,发现底物会降低TC对这些因素的依赖性。综上所述,这些都是所有应用程序的重要发现,这些应用将使用由绝缘体支撑或包含的2D半导体,而不是自由悬挂。

Electrical and thermal properties of atomically thin two-dimensional (2D) materials are affected by their environment, e.g. through remote phonon scattering or dielectric screening. However, while it is known that mobility and thermal conductivity (TC) of graphene are reduced on a substrate, these effects are much less explored in 2D semiconductors such as MoS$_2$. Here, we use molecular dynamics to understand TC changes in monolayer (1L) and bilayer (2L) MoS$_2$ by comparing suspended, supported, and encased structures. The TC of monolayer MoS$_2$ is reduced from ~117 Wm$^{-1}$K$^{-1}$ when suspended, to ~31 Wm$^{-1}$K$^{-1}$ when supported by SiO$_2$, at 300 K. Encasing 1L MoS$_2$ in SiO$_2$ further reduces its TC down to ~22 Wm$^{-1}$K$^{-1}$. In contrast, the TC of 2L MoS$_2$ is not as drastically reduced, being >50% higher than 1L both when supported and encased. These effects are due to phonon scattering with remote vibrational modes of the substrate, which are partly screened in 2L MoS$_2$. We also examine the TC of 1L MoS$_2$ across a wide range of temperatures (300 to 700 K) and defect densities (up to 5$\times$10$^{13}$ cm$^{-2}$), finding that the substrate reduces the dependence of TC on these factors. Taken together, these are important findings for all applications which will use 2D semiconductors supported or encased by insulators, instead of freely suspended.

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