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Ab initio investigation of electronic and vibrational contributions to linear and nonlinear dielectric properties of ice

机译:从头开始研究电子和振动对冰的线性和非线性介电特性的影响

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Electronic and vibrational contributions to the static and dynamic (hyper)polarizability tensors of ice XI and model structures of ordinary hexagonal ice have been theoretically investigated. Calculations were carried out by the finite field nuclear relaxation method for periodic systems (FF-NR) recently implemented in the CRYSTAL code, using the coupled-perturbed Kohn-Sham approach (CPKS) for evaluating the required electronic properties. The effect of structure on the static electronic polarizabilities (dielectric constants) and second-hyperpolarizabilities is minimal. On the other hand, the vibrational contributions to the polarizabilities were found to be significant. A reliable evaluation of these (ionic) contributions allows one to discriminate amongst ice phases characterized by different degrees of proton-order, primarily through differences caused by librational motions. Transverse static and dynamic vibrational (hyper)polarizabilities were found by extrapolating calculations for slabs of increasing size, in order to eliminate substantial surface contributions.
机译:从理论上研究了电子和振动对冰XI的静态和动态(超)极化率张量以及普通六角形冰的模型结构的影响。最近通过CRYSTAL代码实施的周期性系统的有限域核弛豫方法(FF-NR),使用耦合摄动的Kohn-Sham方法(CPKS)进行了计算,以评估所需的电子性能。结构对静态电子极化率(介电常数)和第二超极化率的影响最小。另一方面,发现振动对极化率的贡献是显着的。对这些(离子)贡献的可靠评估可以使人们区分主要以自由运动引起的差异为特征的质子级不同的冰相。通过对增大尺寸的板进行外推计算,发现横向静态和动态振动(超)极化率,以消除大量的表面作用。

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