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首页> 外文期刊>Journal of Colloid and Interface Science >Br doped porous bismuth oxychloride micro-sheets with rich oxygen vacancies and dominating {001} facets for enhanced nitrogen photo-fixation performances
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Br doped porous bismuth oxychloride micro-sheets with rich oxygen vacancies and dominating {001} facets for enhanced nitrogen photo-fixation performances

机译:BR掺杂多孔铋氯化物微型纸,具有丰富的氧空位,主导{001}面部,用于增强氮素光固定性能

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Bismuth oxychloride micro-sheets with rich oxygen vacancies (BiOCl-OV) are firstly prepared through a surfactant assisted solvothermal method. Due to the selective surfactant adsorption, the as-prepared BiOCl-OV exposes high percentage {0 0 1} facets. Moreover, the ion-exchange process not only introduces Br atoms but also creates cavities in crystal structure of the Br doped BiOCl-OV (Br-BiOCl-OV). When used as photocatalyst for N-2 photo-fixation, the optimized Br-BiOCl-OV demonstrates an ammonia producing rate of 6.3 mu mol h(-1) under visible light irradiation, which is greatly enhanced than that of pristine BiOCl-OV (4.1 mu mol h(-1)). The density functional theory (DFT) calculation suggests that because of the introduced Br atoms and the oxygen vacancies, the adsorbed N-2 on Br-BiOCl-OV exhibits greater N-N bond length than that adsorbed on pristine BiOCl-OV, attributing to the effective activation of the inert N-N bonds. Photocurrent response, state/transient PL spectra and electrochemical impedance spectroscopy indicate that the Br-BiOCl-OV possesses promoted charge separation and suppressed charge recombination, which finally leads to the high N-2 photo-fixation performances. (C) 2019 Elsevier Inc. All rights reserved.
机译:首先通过表面活性剂辅助溶剂热法制备具有富氧空位(BioCl-OV)的氯氧化铋微片。由于选择性表面活性剂吸附,所制备的BioCl-ov暴露高百分比{0 0 1}小平面。此外,离子交换过程不仅引入Br原子,而且产生了Br掺杂Biocl-ov(Br-Biocl-OV)的晶体结构中的空腔。当用作光催化剂的N-2光固定时,优化的BR-BioCl-OV在可见光照射下显示出6.3μmolH(-1)的氨生产速率,这大大增强了原始Biocl-ov( 4.1 mu mol h(-1))。密度函数理论(DFT)计算表明,由于引入的BR原子和氧空位,Br-BioCl-OV上的吸附N-2表现出比吸附在原始BioCl-OV上的更大的NN键合长度,归因于有效激活惰性NN键。光电响应,状态/瞬态PL光谱和电化学阻抗光谱表明BR-BioCl-OV具有促进的电荷分离和抑制电荷重组,这最终导致高N-2光固定性能。 (c)2019 Elsevier Inc.保留所有权利。

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