Temperature Dependence of Thermal Conductivity of Proteins: Contributions of Thermal Expansion and Grüneisen Parameter.

IF 2.3 3区 化学 Q3 CHEMISTRY, PHYSICAL Chemphyschem Pub Date : 2024-12-04 DOI:10.1002/cphc.202401017
David M Leitner
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Abstract

The thermal conductivity of many materials depends on temperature due to several factors, including variation of heat capacity with temperature, changes in vibrational dynamics with temperature, and change in volume with temperature. For proteins some, but not all, of these influences on the variation of thermal conductivity with temperature have been investigated in the past. In this study, we examine the influence of change in volume, and corresponding changes in vibrational dynamics, on the temperature dependence of the thermal conductivity. Using a measured value for the coefficient of thermal expansion and recently computed values for the Grüneisen parameter of proteins we find that the thermal conductivity increases with increasing temperature due to change in volume with temperature. We compare the impact of thermal expansion on the variation of the thermal conductivity with temperature found in this study with contributions of heat capacity and anharmonic coupling examined previously. Using values of thermal transport coefficients computed for proteins we also model heating of water in a protein solution following photoexcitation.

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蛋白质热导率的温度依赖性:热膨胀和颗粒奈森参数的贡献。
许多材料的热导率取决于温度,这是由于几个因素造成的,包括热容量随温度的变化,振动动力学随温度的变化,体积随温度的变化。对于蛋白质,一些,但不是全部,这些对热导率随温度变化的影响在过去已经被研究过。在这项研究中,我们研究了体积变化和相应的振动动力学变化对导热系数的温度依赖性的影响。利用热膨胀系数的测量值和最近计算的蛋白质的粗尼森参数值,我们发现由于体积随温度的变化,热导率随温度的升高而增加。我们比较了热膨胀对导热系数随温度变化的影响与之前研究的热容和非谐波耦合的影响。利用计算蛋白质的热传递系数值,我们还模拟了光激发后蛋白质溶液中水的加热。
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来源期刊
Chemphyschem
Chemphyschem 化学-物理:原子、分子和化学物理
CiteScore
4.60
自引率
3.40%
发文量
425
审稿时长
1.1 months
期刊介绍: ChemPhysChem is one of the leading chemistry/physics interdisciplinary journals (ISI Impact Factor 2018: 3.077) for physical chemistry and chemical physics. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. ChemPhysChem is an international source for important primary and critical secondary information across the whole field of physical chemistry and chemical physics. It integrates this wide and flourishing field ranging from Solid State and Soft-Matter Research, Electro- and Photochemistry, Femtochemistry and Nanotechnology, Complex Systems, Single-Molecule Research, Clusters and Colloids, Catalysis and Surface Science, Biophysics and Physical Biochemistry, Atmospheric and Environmental Chemistry, and many more topics. ChemPhysChem is peer-reviewed.
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