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Influence of electron storing, transferring and shuttling assets of reduced graphene oxide at the interfacial copper doped TiO2 p-n heterojunction for increased hydrogen production

机译:影响电子存储,传输和穿梭于资产减少了氧化石墨烯的铜掺杂二氧化钛pn异质结界面提高制氢

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摘要

Herein we report simple, low-cost and scalable preparation of reduced graphene oxide (rGO) supported surfactant-free Cu2O-TiO2 nanocomposite photocatalysts by an ultrasound assisted wet impregnation method. Unlike the conventional preparation techniques, simultaneous reduction of Cu2+ (in the precursor) to Cu+ (Cu2O), and graphene oxide (GO) to rGO is achieved by an ultrasonic method without the addition of any external reducing agent; this is ascertained by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) analyses. UV-visible diffused reflectance spectroscopy (DRS) studies (Tauc plots) provide evidence for the loading of Cu2O tailoring the optical band gap of the photocatalyst from 3.21 eV to 2.87 eV. The photoreactivity of the as-prepared Cu2O-TiO2/rGO samples is determined via H-2 evolution from water in the presence of glycerol as a hole (h(+)) scavenger under visible light irradiation. Very interestingly, the addition of rGO augments the carrier mobility at the Cu2O-TiO2 p-n heterojunction, which is evidenced by the significantly reduced luminescence intensity of the Cu2O-TiO2/rGO photocatalyst. Hence rGO astonishingly enhances the photocatalytic activity compared with pristine TiO2 nanoparticles (NPs) and Cu2O-TiO2, by factors of similar to 14 and similar to 7, respectively. A maximum H-2 production rate of 110 968 mu mol h(-1) g(cat)(-1) is obtained with a 1.0% Cu and 3.0% GO photocatalyst composition; this is significantly higher than previously reported graphene based photocatalysts. Additionally, the present H-2 production rate is much higher than those of precious/noble metal (especially Pt) assisted (as co-catalysts) graphene based photocatalysts. Moreover, to the best of our knowledge, this is the highest H-2 production rate (110 968 mu mol h(-1) g(cat)(-1)) achieved by a graphene based photocatalyst through the splitting of water under visible light irradiation.
机译:我们在此报告简单、低成本和可伸缩的制备了氧化石墨烯(rGO)支持surfactant-free Cu2O-TiO2纳米复合材料论文通过超声波辅助湿浸渍法。制备技术,同时减少Cu2 +(前体)铜+ (Cu2O)石墨烯氧化物(去)rGO是通过一个没有添加任何超声法外部还原剂;x射线衍射(XRD)和x射线光电子能谱(XPS)分析。反射光谱(DRS)研究(Tauc加载Cu2O情节)提供证据裁剪的光学带隙光催化剂从3.21 eV 2.87 eV。做好准备的photoreactivity Cu2O-TiO2 / rGO样品是通过2进化水的存在甘油作为一个洞(h(+))可见光辐照下清道夫。非常有趣的是,添加rGO增强的载流子迁移率Cu2O-TiO2 pn异质结,这是证明了这一点显著降低发光强度Cu2O-TiO2 / rGO光催化剂。令人惊讶的是提高光催化活动与原始二氧化钛相比纳米颗粒(NPs)和Cu2O-TiO2的因素类似于14和类似于7,分别。最大的2 110 968亩摩尔的产量h (1) g (cat)(1)获得1.0%的铜3.0%的光催化剂组成;明显高于之前报道基于石墨烯的催化剂。目前生产速率远高于2这些宝贵的/贵金属(尤其是Pt)协助(如co-catalysts)石墨烯的基础论文的。所知,这是最高的,氢生产率(110 968亩摩尔h g (cat) (1) (1))通过基于石墨烯的光催化剂在可见光下分裂的水辐照。

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