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孔径和形状对金属有机框架材料热导率的影响。

Effect of pore size and shape on the thermal conductivity of metal-organic frameworks.

作者信息

Babaei Hasan, McGaughey Alan J H, Wilmer Christopher E

机构信息

Department of Chemical & Petroleum Engineering , University of Pittsburgh , 3700 O'Hara St , Pittsburgh , PA 15261 , USA . Email:

Department of Mechanical Engineering , Carnegie Mellon University , 5000 Forbes Avenue , Pittsburgh , PA 15213 , USA.

出版信息

Chem Sci. 2017 Jan 1;8(1):583-589. doi: 10.1039/c6sc03704f. Epub 2016 Sep 7.

Abstract

We investigate the effect of pore size and shape on the thermal conductivity of a series of idealized metal-organic frameworks (MOFs) containing adsorbed gas using molecular simulations. With no gas present, the thermal conductivity decreases with increasing pore size. In the presence of adsorbed gas, MOFs with smaller pores experience reduced thermal conductivity due to phonon scattering introduced by gas-crystal interactions. In contrast, for larger pores (>1.7 nm), the adsorbed gas does not significantly affect thermal conductivity. This difference is due to the decreased probability of gas-crystal collisions in larger pore structures. In contrast to MOFs with simple cubic pores, the thermal conductivity in structures with triangular and hexagonal pore channels exhibits significant anisotropy. For different pore geometries at the same atomic density, hexagonal channel MOFs have both the highest and lowest thermal conductivities, along and across the channel direction, respectively. In the triangular and hexagonal channeled structures, the presence of gas molecules has different effects on thermal conductivity along different crystallographic directions.

摘要

我们使用分子模拟研究了孔径和形状对一系列含有吸附气体的理想化金属有机框架(MOF)热导率的影响。在没有气体存在的情况下,热导率随着孔径的增加而降低。在存在吸附气体的情况下,由于气体 - 晶体相互作用引入的声子散射,具有较小孔径的MOF的热导率会降低。相比之下,对于较大的孔径(>1.7纳米),吸附气体对热导率没有显著影响。这种差异是由于在较大孔径结构中气体 - 晶体碰撞的概率降低。与具有简单立方孔的MOF不同,具有三角形和六边形孔道结构的热导率表现出显著的各向异性。对于相同原子密度下的不同孔几何形状,六边形通道MOF在沿通道方向和跨通道方向分别具有最高和最低的热导率。在三角形和六边形通道结构中,气体分子的存在对沿不同晶体学方向的热导率有不同的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d43/5358541/6f47f398557a/c6sc03704f-f1.jpg

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