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Reduced graphene oxide-intercalated graphene oxide nano-hybrid for enhanced photoelectrochemical water reduction

机译:降低石墨烯氧化层嵌入的石墨烯氧化物纳米杂种,用于增强光电化学水还原

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摘要

This paper reports on the synthesis of reduced graphene oxide (RGO)-intercataled graphene oxide (GO) nano-hybrid and investigates its application in photoelectrochemical (PEC) water reduction. The optical, structural, and morphological properties of RGO-intercalated GO (RGO/GO) nano-hybrid were studied using UV–Visible spectroscopy, X-ray diffraction, and scanning electron microscopy, respectively. The reduction of GO to RGO was studied using FTIR spectroscopy. The XRD and FTIR investigation shows the strong π–π stacking interactions between the layered GO host–RGO guest sheets. An improvement in PEC water reduction activity was exhibited by RGO/GO nano-hybrid photoelectrode, with a maximum photocurrent of ??61.35?μA/cm~(2)for RGO 1?wt% in GO versus ??42.80?μA/cm~(2)for pristine GO photoelectrode (43% improvement). The mechanism for photocurrent enhancement was studied by electrochemical impedance analysis. The PEC performance enhancement of RGO/RO nano-hybrid photoelectrode is attributed to the strong π–π stacking interactions between RGO and GO, leading to superior electron collection and transportation by RGO and hence reduced charge carrier recombination. In addition, the UV–Visible absorption and Taut plot analysis showed the higher light harvesting efficiency of the RGO/GO compared to GO, displaying a band gap of 2.58?eV and 3.11?eV for RGO/GO and GO, respectively. The findings of this work show the potential of a strongly coupled layered host–guest nano-hybrids for high-performance optoelectronic materials. Graphic abstract
机译:本文报道了石墨烯氧化物(RGO) - 氯化石墨烯(GO)纳米氧化物(GO)纳米杂交的合成,并研究其在光电子化学(PEC)水中的应用。使用UV可见光谱,X射线衍射和扫描电子显微镜研究RGO嵌入的去(RGO / GO)纳米杂种的光学,结构和形态学性质。使用FTIR光谱研究了去rgo的减少。 XRD和FTIR调查显示了层次的GO主机栏杆旅馆之间的强烈π-π堆叠相互作用。 RGO / Go纳米杂交光电电极表现出PEC水还原活性的改善,具有最大光电流的α0Δε/ cm〜(2),用于α1≤WT%,与ΔWt%相反,相反,相反,ωμA/ cm 〜(2)用于原始GO光电(43%改善)。通过电化学阻抗分析研究了光电流增强机制。 RGO / RO纳米混合光电极的PEC性能增强归因于RGO之间的强π-π堆叠相互作用,导致RGO的优越电子收集和运输,因此减少了电荷载体重组。此外,UV可见的吸收和绷紧曲线分析显示RGO / Go的较高的光收集效率与Go相比,显示2.58的带隙,分别为RGO / GO和GO和GO和GO。这项工作的调查结果表明,用于高性能光电材料的强耦合分层主机纳米混合物的潜力。图形摘要

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