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N-doped carbon dots/CdS hybrid photocatalyst that responds to visible/near-infrared light irradiation for enhanced photocatalytic hydrogen production

机译:N掺杂的碳点/ Cds杂化光催化剂,可应对可见/近红外光照射,用于增强的光催化氢气产生

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摘要

The development of photocatalysts that harvest broad range of wavelengths from visible (Vis) to near-infrared (NIR) light region remains a high-priority target yet great challenge. In this work, a wide spectrum N-doped carbon dots (N-CDs)/CdS composite with low-cost, high efficiency and stability was rationally designed and fabricated by a simply solvothermal method. The result reveals that the introduction of N-CDs does improve the photocatalytic H-2 production of CdS. Especially, the N-CDs/CdS-5 (with a content of 5 wt%N-CDs) exhibited the highest H-2 production rates of around 58.9 and 20.1 mmol g(-1) h(-1) under irradiation of Vis and NIR light, respectively. Additionally, N-CDs/CdS composite also exhibited excellent durability for the photocatalyst activity over 160 h. The corresponding NIR photocatalytic activity of N-CDs/CdS mainly came from the up-converted photoluminescence (PL) property of N-CDs, which can upconvert NIR to Vis light for further exciting CdS nanoparticles to form photo-induced charges during the target reaction. The strategy used here thus opens up a new avenue to greatly tune both the Vis/NIR light absorption and charge separation to construct the effectively broad spectrum-driven photocatalysts.
机译:从可见光(VI)到近红外(NIR)光区域的广泛波长的光催化剂的发展仍然是高优先级的目标仍然存在巨大的挑战。在这项工作中,具有低成本,高效率和稳定性的宽谱N掺杂的碳点(N-CDS)/ CDS复合材料是由简单的溶剂热法理性设计和制造的合理设计和制造。结果表明,N-CD的引入确实改善了CD的光催化H-2产生。特别是,在辐照下,N-CDS / Cds-5(含量为5wt%N-CD)的最高H-2生产率约为58.9和20.1mmol G(-1)H(-1)和尼尔光分别。另外,N-CDS / CDS复合材料还具有出于160小时的光催化剂活性的优异耐久性。 N-CDS / Cds的相应NIR光催化活性主要来自N-CD的上转化的光致发光(PL)性质,其可以将NIR加强以用于进一步激发CDS纳米颗粒以在靶反应期间形成光诱导电荷的光。因此,这里使用的策略开辟了一个新的途径,以极大地调整VI / NIR光吸收和电荷分离,以构建有效的宽度驱动的光催化剂。

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