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金红石 TiO 中氧自扩散的第一性原理描述:评估焓和熵贡献引起的不确定性。

First-principles description of oxygen self-diffusion in rutile TiO: assessment of uncertainties due to enthalpy and entropy contributions.

机构信息

Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.

出版信息

Phys Chem Chem Phys. 2018 Jun 27;20(25):17448-17457. doi: 10.1039/c8cp02741b.

Abstract

Properties related to transport such as self-diffusion coefficients are relevant to fuel cells, electrolysis cells, and chemical/gas sensors. Prediction of self-diffusion coefficients from first-principles involves precise determination of both enthalpy and entropy contributions for point defect formation and migration. We use first-principles density functional theory to estimate the self-diffusion coefficient for neutral O0i and doubly ionized Oi2- interstitial oxygen in rutile TiO2 and compare the results to prior isotope diffusion experiments. In addition to formation and migration energy, detailed estimates of formation and migration entropy incorporating both vibrational and ionization components are included. Distinct migration pathways, both based on an interstitialcy mechanism, are identified for O0i and Oi2-. These result in self-diffusion coefficients that differ by several orders of magnitude, sufficient to resolve the charge state of the diffusing species to be Oi2- in experiment. The main sources of error when comparing computed parameters to those obtained from experiment are considered, demonstrating that uncertainties due to computed defect formation and migration entropies are comparable in magnitude to those due to computed defect formation and migration energies. Even so, the composite uncertainty seems to limit the accuracy of first-principles calculations to within a factor of ±103, demonstrating that direct connections between computation and experiment are now increasingly possible.

摘要

与运输相关的性质,如自扩散系数,与燃料电池、电解池和化学/气体传感器有关。从第一性原理预测自扩散系数涉及到精确确定点缺陷形成和迁移的焓和熵贡献。我们使用第一性原理密度泛函理论来估计金红石 TiO2 中中性 O0i 和双离子化 Oi2-间隙氧的自扩散系数,并将结果与先前的同位素扩散实验进行比较。除了形成和迁移能外,还包括了包含振动和电离分量的形成和迁移熵的详细估计。对于 O0i 和 Oi2-,确定了基于间隙机制的不同迁移途径。这导致自扩散系数相差几个数量级,足以解决实验中扩散物种的电荷状态为 Oi2-。考虑到将计算参数与实验获得的参数进行比较时的主要误差源,证明由于计算缺陷形成和迁移熵引起的不确定性与由于计算缺陷形成和迁移能引起的不确定性具有相同的量级。即便如此,综合不确定性似乎将第一性原理计算的准确性限制在±103 以内,表明计算和实验之间的直接联系现在越来越可行。

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