氘化消除 KDP 晶体中的量子偶极缺陷

IF 9.4 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Bingjia Yang, Pinchen Xie, Roberto Car
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引用次数: 0

摘要

氢键铁电晶体 KH2PO4(KDP)的介电特性与 KD2PO4(DKDP)的介电特性有很大不同。众所周知,氘化会影响氢键开关和重离子位移的相互作用,而这正是出现宏观极化的基础,但目前还缺乏详细的微观模型。我们的研究表明,全原子路径积分分子动力学模拟可以预测同位素效应,揭示区别 KDP 和 DKDP 的微观机制。质子隧穿产生的磷酸构型对极化不起作用。在低温条件下,这些量子偶极缺陷在 KDP 中非常明显,而在 DKDP 中却可以忽略不计。这些内在缺陷解释了为什么 KDP 的自发极化和转变熵低于 DKDP。量子波动在 KDP 中的突出作用与不寻常的氢键强度有关,在 KDP 家族的其他晶体中也同样重要,这些晶体表现出类似的同位素效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Deuteration removes quantum dipolar defects from KDP crystals

Deuteration removes quantum dipolar defects from KDP crystals

Dielectric properties of the hydrogen-bonded ferroelectric crystal KH2PO4 (KDP) differ significantly from those of KD2PO4 (DKDP). It is well established that deuteration affects the interplay of hydrogen-bond switches and heavy ion displacements that underlie the emergence of macroscopic polarization, but a detailed microscopic model is missing. We show that all-atom path integral molecular dynamics simulations can predict the isotope effects, revealing the microscopic mechanism that differentiates KDP and DKDP. Proton tunneling generates phosphate configurations that do not contribute to the polarization. At low temperatures, these quantum dipolar defects are substantial in KDP but negligible in DKDP. These intrinsic defects explain why KDP has lower spontaneous polarization and transition entropy than DKDP. The prominent role of quantum fluctuations in KDP is related to the unusual strength of the hydrogen bonds and should be equally important in other crystals of the KDP family, which exhibit similar isotope effects.

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来源期刊
npj Computational Materials
npj Computational Materials Mathematics-Modeling and Simulation
CiteScore
15.30
自引率
5.20%
发文量
229
审稿时长
6 weeks
期刊介绍: npj Computational Materials is a high-quality open access journal from Nature Research that publishes research papers applying computational approaches for the design of new materials and enhancing our understanding of existing ones. The journal also welcomes papers on new computational techniques and the refinement of current approaches that support these aims, as well as experimental papers that complement computational findings. Some key features of npj Computational Materials include a 2-year impact factor of 12.241 (2021), article downloads of 1,138,590 (2021), and a fast turnaround time of 11 days from submission to the first editorial decision. The journal is indexed in various databases and services, including Chemical Abstracts Service (ACS), Astrophysics Data System (ADS), Current Contents/Physical, Chemical and Earth Sciences, Journal Citation Reports/Science Edition, SCOPUS, EI Compendex, INSPEC, Google Scholar, SCImago, DOAJ, CNKI, and Science Citation Index Expanded (SCIE), among others.
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