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Gradient doping of phosphorus in Fe2O3 nanoarray photoanodes for enhanced charge separation

机译:Fe2O3纳米阵列光阳极中磷的梯度掺杂以增强电荷分离

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摘要

Hematite (α-Fe2O3) is a promising candidate for solar-to-hydrogen energy conversion. However, the low carrier mobility and extremely high charge recombination rate limit the practical application of hematite in solar water splitting. This paper describes the fabrication of a Fe2O3 photoanode with gradient incorporation of phosphorus (P) employing a facile dipping and annealing method to improve the charge separation for enhanced photoelectrochemical water oxidation. This gradient P incorporation increases the width of band bending over a large region in Fe2O3, which is crucial for promoting the charge separation efficiency in the bulk. Although both gradient and homogeneous P-incorporated Fe2O3 samples exhibit similar electrical conductivity, the Fe2O3 electrode with a gradient P concentration presents an additional charge separation effect. A photocurrent of ∼1.48 mA cm–2 is obtained at 1.23 V vs. reversible hydrogen electrode (vs. RHE) under air mass 1.5G illumination. Additionally, the H2O oxidation kinetics of Fe2O3 with gradient P incorporation was further improved upon loading cobalt phosphate as cocatalyst, reaching a photocurrent of ∼2.0 mA cm–2 at 1.23 V vs. RHE.
机译:赤铁矿(α-Fe2O3)是太阳能转化为氢能的有希望的候选者。然而,低的载流子迁移率和极高的电荷复合率限制了赤铁矿在太阳能水分解中的实际应用。本文介绍了一种采用简便的浸渍和退火方法,通过梯度掺入磷(P)来制备Fe2O3光电阳极的方法,以改善电荷分离,从而增强光电化学水的氧化能力。该梯度P的引入增加了Fe 2 O 3中大区域上的能带弯曲宽度,这对于提高整体中的电荷分离效率至关重要。尽管梯度和均质P结合的Fe2O3样品均显示出相似的电导率,但具有梯度P浓度的Fe2O3电极仍具有额外的电荷分离效果。在空气质量为1.5G的条件下,相对于可逆氢电极(vs. RHE),在1.23 V下获得的光电流为〜1.48 mA cm –2 。此外,在负载磷酸钴作为助催化剂时,加入梯度P的Fe2O3的H2O氧化动力学得到了进一步改善,在相对于RHE的1.23 V下达到了约2.0 mA cm 的光电流。

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