论文标题

使用纳米平方MOS2的热绝缘和热量引导

Thermal insulation and heat guiding using nanopatterned MoS2

论文作者

Xiao, Peng, Sachat, Alexandros El, Angel, Emigdio Chávez, Nikoulis, Giorgos, Kioseoglou, Joseph, Termentzidis, Konstantinos, Torres, Clivia M. Sotomayor, Sledzinska, Marianna

论文摘要

在现代电子中,过热是设备故障的主要原因之一。过热会对电路组件造成不可逆转的损害,还可能导致火灾,爆炸和伤害。因此,在基于2D材料的电子设备的出现时,对它们的热性能除了电力外,对它们的热性能对于使多余的热量有效地转移了电子组件至关重要。在这项工作中,我们提出了基于独立的,几层的纳米图案MOS2的结构,该结构在平面内部隔热和引导热量。我们通过对原始和纳米平方的MOS2膜中的平面内导热率进行彻底研究来达到这些设计。采用了两晶拉曼调节测量法来测量一组直径大于20 um的独立MOS2薄片的导热率,分别为5至40 nm,从而分别导致30至85 W/mk的值。在用聚焦离子束的纳米看图的直径为100 nm的正方形晶格后,我们在500 nm的周期中获得了降低了10倍以上的热导率,并且在300 nm的周期内,值降低了1 w/mk的值。对于原始和纳米平淡的MOS2,通过平衡分子动力学模拟支持了结果。某些区域的选择性模式会导致同一材料内的导热率极大的差异。首次在几层MOS2中使用热绝缘和热量引导的剥削这种效果。图案区域充当高热电阻:我们获得了4x10-6 m2k/w的热电阻,仅四个图案晶格周期为300 nm,强调了MOS2对热管理应用的显着潜力。

In the modern electronics overheating is one of the major reasons for device failure. Overheating causes irreversible damage to circuit components and can also lead to fire, explosions, and injuries. Accordingly, in the advent of 2D material-based electronics, an understanding of their thermal properties in addition to their electric ones is crucial to enable efficient transfer of excess heat away from the electronic components. In this work we propose structures based on free-standing, few-layer, nanopatterned MoS2 that insulate and guide heat in the in-plane direction. We arrive at these designs via a thorough study of the in-plane thermal conductivity as a function of thickness, porosity, and temperature in both pristine and nanopatterned MoS2 membranes. Two-laser Raman thermometry was employed to measure the thermal conductivities of a set of free-standing MoS2 flakes with diameters greater than 20 um and thicknesses from 5 to 40 nm, resulting in values from 30 to 85 W/mK, respectively. After nanopatterning a square lattice of 100-nm diameter holes with a focused ion beam we have obtained a greater than 10-fold reduction of the thermal conductivities for the period of 500 nm and values below 1 W/mK for the period of 300 nm. The results were supported by equilibrium molecular dynamic simulations for both pristine and nanopatterned MoS2. The selective patterning of certain areas results in extremely large difference in thermal conductivities within the same material. Exploitation of this effect enabled for the first time thermal insulation and heat guiding in the few-layer MoS2. The patterned regions act as high thermal resistors: we obtained a thermal resistance of 4x10-6 m2K/W with only four patterned lattice periods of 300 nm, highlighting the significant potential of MoS2 for thermal management applications.

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