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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Directed holey and ordered g-C(3)N(4.5)nanosheets by a hard template nanocasting approach for sustainable visible-light hydrogen evolution with prominent quantum efficiency
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Directed holey and ordered g-C(3)N(4.5)nanosheets by a hard template nanocasting approach for sustainable visible-light hydrogen evolution with prominent quantum efficiency

机译:通过硬模板纳米纳米型方法针对突出量子效率的可持续可见光氢进化的硬模板纳米纳米纳米纳米纳米

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It is desirable yet challenging to synthesize a highly ordered holey carbon nitride material with excess nitrogen atoms for a sustainable solar H(2)evolution. Herein, we report the development of directed highly ordered nitrogen-rich honeycomb-like mesoporous carbon nitride nanosheets by using a novel synthetic approach for this purpose. The unique formation route, surface structure and charge carrier dynamics of the two dimensional holey nanosheets are comprehensively monitored and confirmed by SAXS, HRTEM, AFM, BET, XPS and TRPL analyses. Non-stoichiometric high nitrogen content mesoporous nanosheets with the final stoichiometry of g-C(3)N(4.5)acquiring a high specific surface area (382 m(2)g(-1)), remarkable pore size (7.2 nm) and sheet thickness similar to 5-6 nm are realized in this first report. This elegant material possesses unique low band-gap energy (2.42 eV). Remarkably, the as-synthesized g-C(3)N(4.5)NSs exhibit a record high photocatalytic H(2)evolution rate of 8180 mu mol g(-1)h(-1)under the present light irradiation (420 <=lambda <= 510 nm) condition. The apparent quantum efficiency is found to be as high as 27.14% at 420 nm and retains its photocatalytic activity for longer consecutive catalytic cycles. Bigger pore size and pore volume, and thin walls leading to shortening of the path length of exciton pairs, efficient charge separation and the prolonged average life time of the charge carriers, and lone electron pairs associated with the excess nitrogen content are found to be the reasons behind the excellent visible light driven water splitting reaction.
机译:理想的是致力于合成具有过量氮原子的高度有序的多孔氮化物材料,用于可持续的太阳能H(2)进化。在此,我们通过使用新的合成方法报告指向高度有序的富含含氮蜂窝状的介孔碳氮甲型纳米片的开发。通过SAX,HRTEM,AFM,BET,XPS和TRPL分析全面监测和确认二维空穴纳米片的独特形成路线,表面结构和电荷载体动态。非化学计量的高氮含量介孔纳米液与GC(3)N(4.5)的最终化学计量获得高比表面积(382m(2)G(-1)),显着的孔径(7.2nm)和片材厚度在第一个报告中实现了5-6 nm。这种优雅的材料具有独特的低带隙能量(2.42eV)。值得注意的是,在本光照照射下,AS合成的GC(3)N(4.5)NSS表现出8180μmMolg(-1)H(-1)的记录高光催化H(2)进化速率(420 <= lambda <= 510 nm)条件。发现表观量子效率在420nm处高达27.14%,并保持其光催化活性,以使其更长的连续催化循环。孔径和孔体积越大,薄壁,导致缩短激子对的路径长度,有效的电荷分离和电荷载体的延长平均寿命,以及与过量的氮含量相关的孤电子对是优异的可见光驱动水分裂反应背后的原因。

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