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g-C_3N_4 photoanode for photoelectrocatalytic synergistic pollutant degradation and hydrogen evolution

机译:g-C_3N_4光电阳极,用于光电催化协同降解污染物和析氢

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Photoelectrocatalytic (PEC) technique for hydrogen evolution from water splitting and pollutant degradation is one of the most sustainable and environmental approaches for wastewater treatment and energy regeneration. Herein, a porous graphitic carbon nitride (g-C3N4)/reduction graphene oxide (rGO) structure (CNG) is constructed via a solvothermal approach. By using a facile electrophoretic deposition method, CNG is deposited on nickel (Ni) foam with the formation of highly active CNG-Ni foam photoanode. rGO were utilized to load g-C3N4 , and also acts as the bridge for accelerating the rate of electron transfer from g-C(3)N(4)to Ni foam. The resulted photoanode exhibits an excellent photoelectrochemical performance for synergistic pollutant degradation and H-2 evolution under visible light irradiation (lambda 420 nm). Such excellent PEC activity is attributed to the strong visible-light absorption and fast electron transmission of the as-obtained photoanode. The visible light-driven photocurrent value of the optimal photoanode can be well maintained up to 24 h, indicating its high stability during the PEC process. This work also shows significance for paving a facile route to fabricating highly active photoelectrodes for environmental and energy applications.
机译:用于从水分解和污染物降解中释放出氢气的光电催化(PEC)技术是用于废水处理和能量再生的最可持续,最环保的方法之一。在此,通过溶剂热方法构造了多孔石墨氮化碳(g-C3N4)/还原石墨烯(rGO)结构(CNG)。通过使用简便的电泳沉积方法,将CNG沉积在镍(Ni)泡沫上,形成高活性的CNG-Ni泡沫光阳极。 rGO被用来加载g-C3N4,并且还充当加速电子从g-C(3)N(4)传递到泡沫镍的桥梁。所得的光阳极在可见光照射下(λ> 420 nm)具有协同降解污染物和H-2放出的优异光电化学性能。这样优异的PEC活性归因于所获得的光阳极的强可见光吸收和快速电子传输。最佳光电阳极的可见光驱动光电流值可以保持长达24小时,这表明它在PEC过程中具有很高的稳定性。这项工作还显示出为制造用于环境和能源应用的高活性光电极铺平道路的重要意义。

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