Department of Physics, Umeå University, 901 87 Umeå, Sweden.
J Chem Phys. 2018 Sep 28;149(12):124506. doi: 10.1063/1.5050172.
The effect of deuteration on the thermal conductivity of water, crystalline ice, and amorphous ices was studied using the pressure induced amorphization of hexagonal ice, ice Ih, to obtain the deuterated, DO, forms of low-density amorphous (LDA), high-density amorphous (HDA), and very-high density amorphous (VHDA) ices. Upon deuteration, of ice Ih decreases between 3% and 4% in the 100-270 K range at ambient pressure, but the effect diminishes on densification at 130 K and vanishes just prior to amorphization near 0.8 GPa. The unusual negative value of the isothermal density dependence of for ice Ih, = (d ln /d ln ) = -4.4, is less so for deuterated ice: = -3.8. In the case of the amorphous ices and liquid water, of water decreases by 3.5% upon deuteration at ambient conditions, whereas of HDA and VHDA ices instead increases by up to 5% for pressures up to 1.2 GPa at 130 K, despite HDA's and VHDA's structural similarities with water. The results are consistent with significant heat transport by librational modes in amorphous ices as well as water, and that deuteration increases phonon-phonon scattering in crystalline ice. Heat transport by librational modes is more pronounced in DO than in HO at low temperatures due to a deuteration-induced redshift of librational mode frequencies. Moreover, the results show that of deuterated LDA ice is 4% larger than that of normal LDA at 130 K, and both forms display an unusual temperature dependence of , which is reminiscent of that for crystals ( ∼ ), and a unique negative pressure dependence of , which likely is linked to local-order structural similarities to ice Ih.
氘化对水、晶态冰和非晶冰热导率的影响,是通过六方冰、冰 Ih 在压力下的非晶化来研究的,以获得氘代的 DO 形式的低密度非晶态(LDA)、高密度非晶态(HDA)和超高密度非晶态(VHDA)冰。在环境压力下,冰 Ih 在 100-270 K 范围内的 下降了 3%到 4%,但在 130 K 时的致密化过程中影响减弱,在接近 0.8 GPa 时的非晶化之前消失。冰 Ih 的等温密度依赖性的不寻常的负 值, = (d ln /d ln ) = -4.4,对于氘代冰来说则较小: = -3.8。对于非晶冰和液态水,在环境条件下氘化使水的 下降了 3.5%,而在 130 K 时,在 1.2 GPa 以下的压力下,HDA 和 VHDA 冰的 反而增加了高达 5%,尽管 HDA 和 VHDA 与水具有相似的结构。这些结果与非晶冰和水中的振动模式的热输运有关,并且氘化增加了晶态冰中的声子-声子散射。由于振动模式频率的氘诱导红移,在低温下,DO 中的振动模式热输运比 HO 更明显。此外,结果表明,在 130 K 时,氘代 LDA 冰的 比正常 LDA 大 4%,两种形式都表现出不寻常的 温度依赖性,类似于晶体( ∼ ),以及独特的负压力依赖性,这可能与冰 Ih 的局部有序结构相似有关。