Raiden Speelman, Ezra J. Marker, Mavis D. Boamah, Jacob Kupferberg, Justin Z. Bye, Mark Engelhard, Yatong Zhao, Alex B. F. Martinson, Kevin M. Rosso, Franz M. Geiger
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引用次数: 0
摘要
赤铁矿光阳极在氧进化反应中大有可为,但由于其水氧化过电位较高(0.5-0.6 V),光电流有限,因此目前在经济上并不可行。电极表面偶极子定向所需的工作可能会导致过电位,尤其是氧进化反应(OER)中电子源水的偶极子。在这里,我们采用二次谐波振幅和相位测量法来量化赤铁矿上净对齐栅极层水分子的数量以及与水翻转相关的功,赤铁矿是一种富含地球的 OER 半导体,具有很高的过电位。在零外加偏压下,与 pH 值相关的斯特恩层水分子翻转电势表现出 Nernstian 行为。在正外加电位和 pH 值为 13 时,约有一到两个单层水分子将氧原子指向电极,这对 OER 有利。与水翻转相关的功与液态水的内聚能(44 kJ mol-1)相匹配,OER 电流密度最高。在 pH 值为 5 时,该电流可忽略不计,此时的功接近 100 kJ mol-1。我们的研究结果表明,斯特恩层水翻转的需要与 OER 过电位之间存在因果关系,这可能有助于开发降低后者的策略。
Water flipping and the oxygen evolution reaction on Fe2O3 nanolayers
Hematite photoanodes are promising for the oxygen evolution reaction, however, their high overpotential (0.5-0.6 V) for water oxidation and limited photocurrent make them economically unviable at present. The work needed to orient dipoles at an electrode surface may be an overlooked contribution to the overpotential, especially regarding dipoles of water, the electron source in the oxygen evolution reaction (OER). Here, we employ second harmonic amplitude and phase measurements to quantify the number of net-aligned Stern layer water molecules and the work associated with water flipping, on hematite, an earth abundant OER semiconductor associated with a high overpotential. At zero applied bias, the pH-dependent potentials for Stern layer water molecule flipping exhibit Nernstian behavior. At positive applied potentials and pH 13, approximately one to two monolayers of water molecules points the oxygen atoms towards the electrode, favorable for the OER. The work associated with water flipping matches the cohesive energy of liquid water (44 kJ mol-1) and the OER current density is highest. This current is negligible at pH 5, where the work approaches 100 kJ mol-1. Our findings suggest a causal relationship between the need for Stern layer water flipping and the OER overpotential, which may lead to developing strategies for decreasing the latter.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.