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首页> 外文期刊>RSC Advances >Environmentally sustainable biogenic fabrication of AuNP decorated-graphitic g-C3N4 nanostructures towards improved photoelectrochemical performances
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Environmentally sustainable biogenic fabrication of AuNP decorated-graphitic g-C3N4 nanostructures towards improved photoelectrochemical performances

机译:AuNP装饰的石墨化g-C3N4纳米结构的环境可持续生物制造,以改善光电化学性能

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Noble-metal gold (Au) nanoparticles (NPs) anchored/decorated on polymeric graphitic carbon nitride (g-C _(3) N _(4) ), as a nanostructure, was fabricated by a simple, single step, and an environmentally friendly synthesis approach using single-strain-developed biofilm as a reducing tool. The well deposited/anchored AuNPs on the sheet-like structure of g-C _(3) N _(4) exhibited high photoelectrochemical performance under visible-light irradiation. The Au-g-C _(3) N _(4) nanostructures behaved as a plasmonic material. The nanostructures were analyzed using standard characterization techniques. The effect of AuNPs deposition on the photoelectrochemical performance of the Au-g-C _(3) N _(4) nanostructures was examined by linear sweep voltammetry (LSV), electrochemical impedance spectroscopy (EIS), incident photon-to-current efficiency (IPCE) and cyclic voltammetry (CV) in the dark and under visible-light irradiation. The optimal charge transfer resistance for Au-g-C _(3) N _(4) nanostructures (6 mM) recorded at 18.21 ± 1.00 Ω cm ~(?2) and high electron transfer efficiency, as determined by EIS. The improved photoelectrochemical performance of the Au-g-C _(3) N _(4) nanostructures was attributed to the synergistic effects between the conduction band minimum of g-C _(3) N _(4) and the plasmonic band of AuNPs, including high optical absorption, uniform distribution, and nanoscale particle size. This simple, biogenic approach opens up new ways of producing photoactive Au-g-C _(3) N _(4) nanostructures for potential practical applications, such as visible light-induced photonic materials for real device development.
机译:通过简单,单一的步骤和环保的合成方法,就将纳米金锚定/修饰在聚合物石墨碳氮化物(gC _(3)N _(4))上的贵金属金(Au)纳米颗粒(NPs)制成了纳米结构。使用单株开发的生物膜作为还原工具的方法。 g-C _(3)N _(4)的片状结构上沉积/锚固的AuNPs在可见光照射下表现出高的光电化学性能。 Au-g-C _(3)N _(4)纳米结构表现为等离子体材料。使用标准表征技术分析了纳米结构。通过线性扫描伏安法(LSV),电化学阻抗谱(EIS),入射光子电流效率(IPCE)检查了AuNPs沉积对Au-gC _(3)N _(4)纳米结构的光电化学性能的影响)和循环伏安法(CV)在黑暗中和可见光照射下。由EIS确定,Au-g-C _(3)N _(4)纳米结构(6 mM)在18.21±1.00Ωcm〜(?2)记录的最佳电荷转移电阻和高电子转移效率。 Au-gC _(3)N _(4)纳米结构的改善的光电化学性能归因于gC _(3)N _(4)的导带最小值和AuNPs的等离激元带之间的协同效应,包括高光学吸收,均匀分布和纳米级粒径。这种简单的生物方法为潜在的实际应用开辟了生产光敏Au-g-C _(3)N _(4)纳米结构的新方法,例如用于实际设备开发的可见光诱导光子材料。

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