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Why thermal conductivity of CaO is lower than that of CaS: a study from the perspective of phonon splitting of optical mode

机译:为什么CAO的导热系数低于CAS的热导电性:从光学模式的声子分裂的角度来看

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摘要

Generally speaking, for materials with the same structure, the thermal conductivity is higher for lighter atomic masses. However, we found that the thermal conductivity of CaO is lower than that of CaS, despite the lighter atomic mass of O than S. To uncover the underlying physical mechanisms, the thermal conductivity of CaM (M = O, S, Se, Te) and the corresponding response to strain is investigated by performing first-principles calculations along with the phonon Boltzmann transport equation. For unstrained system, the order of thermal conductivity is CaS > CaO > CaSe > CaTe. This order remains unchanged in the strain range of -2% to 5%. When the compressive strain is larger than 2%, the thermal conductivity of CaO surpasses that of CaS and becomes the highest thermal conductivity material among the four compounds. By analyzing the mode-dependent phonon properties, the phonon lifetime is found to be dominant over other influential factors and leads to the disparate response of thermal conductivity under strain. Moreover, the changing trend of three-phonon scattering phase space is consistent with that of phonon lifetime, which is directly correlated to the phonon frequency gap induced by the LO-TO splitting. The variation of Born effective charge is found to be opposite for CaM. The Born effective charge of CaO decreases with tensile strain increasing, demonstrating stronger charge delocalization and lower ionicity, while the Born effective charges of CaS, CaSe, and CaTe show a dramatic increase. Such variation indicates that the bonding nature can be effectively tuned by external strain, thus affecting the phonon anharmonic properties and thermal conductivity. The difference of bonding nature is further confirmed by the band structure. Our results show that the bonding nature of CaM can be modulated by external strain and leads to disparate strain dependent thermal conductivity.
机译:一般来说,对于具有相同结构的材料,较轻原子质量的热导率较高。然而,我们发现CaO的热导率低于CaS,尽管O的原子质量比S轻。为了揭示潜在的物理机制,通过第一性原理计算和声子玻尔兹曼输运方程,研究了CaO(M=O,S,Se,Te)的热导率和对应的应变响应。对于无应力体系,导热系数的大小顺序为CaS>CaO>CaSe>CaTe。该顺序在-2%至5%的应变范围内保持不变。当压缩应变大于2%时,CaO的导热系数超过CaS,成为四种化合物中导热系数最高的材料。通过分析与模式有关的声子特性,发现声子寿命比其他影响因素占主导地位,并导致应变下热导率的不同响应。此外,三声子散射相空间的变化趋势与声子寿命的变化趋势一致,这与LO-to分裂引起的声子频隙直接相关。玻恩有效电荷的变化与凸轮相反。CaO的Born有效电荷随着拉伸应变的增加而减少,表现出更强的电荷离域性和更低的离子性,而CaS、CaSe和CaTe的Born有效电荷则显著增加。这种变化表明,外部应变可以有效地调节键的性质,从而影响声子的非谐性质和热导率。能带结构进一步证实了键合性质的差异。我们的结果表明,CaM的键合性质可以由外部应变调节,并导致不同的应变相关热导率。

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