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首页> 外文期刊>Advanced energy materials >Impact of Hydroxylation and Hydration on the Reactivity of α-Fe_2O_3 (0001) and (1102) Surfaces under Environmental and Electrochemical Conditions
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Impact of Hydroxylation and Hydration on the Reactivity of α-Fe_2O_3 (0001) and (1102) Surfaces under Environmental and Electrochemical Conditions

机译:环境和电化学条件下羟基化和水合作用对α-Fe_2O_3(0001)和(1102)表面反应活性的影响

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摘要

Hematite (alpha-Fe2O3) is widely used as a catalytic electrode material in photoelectrochemical water oxidation, where its surface compositions and stabilities can strongly impact the redox reaction process. Here, its surface configurations in environmental or electrochemical conditions are assessed via density functional theory (DFT) calculations conducted at the Perdew, Burke, and Ernzerhof (PBE)+U level. The most energetically favorable surface domains of alpha-Fe2O3 (0001) and (1 (1) over bar 02) are predicted by constructing the surface phase diagrams in the framework of first-principle thermodynamics. The relative surface stabilities are investigated as a function of partial pressures of oxygen and water, temperature, solution pH, and electrode potential not only for perfect bulk terminations but also for defect-containing surfaces having various degrees of hydroxylation and hydration. In order to assess the impact on the redox reactions of the surface planes as well as of the extent of surface hydration/hydroxylation, the thermodynamics of the four-step oxygen evolution reaction (OER) mechanism are examined in detail for different models of the alpha-Fe2O3 (0001) and (1 (1) over bar 02) surfaces. Importantly, the results underline that the nature of the surface termination and the degree of near-surface hydroxylation give rise to significant variations in the OER overpotentials.
机译:赤铁矿(α-Fe2O3)被广泛用作光电化学水氧化中的催化电极材料,其表面组成和稳定性会强烈影响氧化还原反应过程。在这里,通过在Perdew,Burke和Ernzerhof(PBE)+ U水平进行的密度泛函理论(DFT)计算,可以评估其在环境或电化学条件下的表面构型。通过在第一性原理热力学的框架内构建表面相图,可以预测到α-Fe2O3(0001)和(1(1)在条形02上)的最有利能量表面域。研究相对表面稳定性是氧气和水的分压,温度,溶液的pH值和电极电势的函数,不仅对于完美的本体终止,而且对于具有不同程度的羟基化和水合作用的含缺陷表面也是如此。为了评估对表面平面的氧化还原反应的影响以及表面水合/羟基化程度的影响,针对不同的α模型,详细研究了四步制氧反应(OER)机理的热力学。 -Fe2O3(0001)和(1(1)在bar 02上)的表面。重要的是,结果强调了表面终止的性质和近表面羟基化的程度导致OER超电势的显着变化。

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