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Bipolar electrochemistry as a powerful technique for rapid synthesis of ultrathin graphdiyne nanosheets: Improvement of photoelectrocatalytic activity toward both hydrogen and oxygen evolution

机译:双极电化学作为快速合成超薄的强大技术的强大技术:改善光电催化活性对氢气和氧气进化的影响

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The acetylenic carbon-rich nanostructures such as graphdiyne has been received increasing attentions due to its potential applications in energy conversion, photoelectronic devices, catalysis, sensing and biomedical areas. So, development of facile synthesis procedures for ultrathin graphdiyne nanostructures is a challenge. Here, a prompt and simple method is proposed for polycondensation of 1,3,5-triethynylbenezene and synthesis of graphdiyne-like nanosheets, using bipolar electrochemistry assisted by copper grid electrode in the ethanol/acetonitrile solvent. The large scale of graphdiyne can be achieved with a series of bipolar electrodes in a single bipolar cell. The prepared nano sheets are characterized by various techniques, such as SEM, TEM, Raman and XPS. The as prepared material shows a remarkable photocatalytic activity toward hydrogen evolution (25 mA cm-2 at 0.6 V vs. RHE) as well as oxygen evolution (4.5 mA cm-2 at 1.1 V vs. RHE) activity at low overpotentials. The proposed method promised as a rapid and simple process for synthesis of graphdiyne-like nanostructures with remarkable electrocatalytic activity at less than 150 min. Furthermore, the presented procedure can be developed as applicable method for preparation of other grphdiyne-like nanostructures for fabrication of sensing and biosensing devices, optical imaging and nanoparticles loading.(c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:由于其在能量转换,光电器件,催化,传感和生物医学区域的潜在应用,已经增加了乙炔富含富含碳含量的纳米结构。因此,用于超薄石墨酰纳米结构的容易合成程序的开发是一种挑战。这里,提出了一种提示和简单的方法,用于缩聚1,3,5-三乙烯苯并烯酮,并使用乙醇/乙腈溶剂中的铜栅电极辅助双极电化学辅助的甲霉素样纳米片。通过在单个双极电池中的一系列双极电极可以实现大规模的石斑酰变。制备的纳米片的特征在于各种技术,例如SEM,TEM,拉曼和XPS。作为制备的材料显示出朝向氢进化的显着光催化活性(25mA cm-2以0.6V与Rhe)以及低过电位下的氧进化(4.5 mA cm-2处为1.1V与Rhe)活性。所提出的方法承诺作为合成石墨酰胺样纳米结构的快速简便,在不到150分钟的情况下具有显着的电催化活性。此外,所提出的程序可以作为适用于制备用于制备感测和生物传感装置的其他Grphdiyne的纳米结构的应用方法,光学成像和纳米颗粒加载。(c)2021氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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