Controlling size and distribution of Au nano-particles on C3N4 for high-efficiency photocatalytic hydrogen production

Xunan Ran, Zhihua Chen, Hongzhou Ji, Zhaoyu Ma, Yuxi Xie, Wenping Li, Junying Zhang
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Abstract

With advantages such as low cost, high stability, and ease of production, visible light photocatalytic C3N4 with a unique microscopic layered structure holds significant potential for development. However, its hydrogen production efficiency remains low due to the pronounced recombination of photo-generated charge carriers and limited surface reaction sites. Normally, the photocatalytic performance of C3N4 can be enhanced by loading noble metals with surface plasmon resonance. It is worth noting that the size of noble metal nanoparticles has a great influence on photocatalytic performance. In this study, accurate controlling of the size and distribution of Au nanoparticles was achieved on the surface of C3N4 by introducing amino groups to improve photocatalytic performance. Results show that uniformly distributed Au nanoparticles in the range of 2–6 nm can be obtained on C3N4 with a remarkable enhancement of hydrogen production efficiency, which is about 114 times the property of pure C3N4. The small-sized and uniformly distributed Au nanoparticles can provide more reaction sites and increase the separation of photo-generated charge carriers, in turn improving Au/NH3–C3N4 photocatalytic hydrogen release rate to 6.85 mmol g−1 h−1. This work offers a facile way to enhance photocatalytic performance by controlling the size of metal nanoparticles on C3N4 precisely.
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控制 C3N4 上金纳米粒子的尺寸和分布,实现高效光催化制氢
具有独特微观层状结构的可见光光催化 C3N4 具有成本低、稳定性高、易于生产等优点,具有巨大的发展潜力。然而,由于光生电荷载流子的明显重组和有限的表面反应位点,其制氢效率仍然较低。通常,C3N4 的光催化性能可以通过负载具有表面等离子共振的贵金属来提高。值得注意的是,贵金属纳米颗粒的尺寸对光催化性能有很大影响。本研究通过引入氨基,在 C3N4 表面实现了对金纳米粒子大小和分布的精确控制,从而提高了光催化性能。结果表明,在 C3N4 上可获得 2-6 nm 范围内均匀分布的金纳米粒子,其产氢效率显著提高,约为纯 C3N4 的 114 倍。小尺寸且均匀分布的金纳米粒子可以提供更多的反应位点,增加光生电荷载流子的分离,从而将 Au/NH3-C3N4 光催化氢气释放率提高到 6.85 mmol g-1 h-1。这项工作提供了一种通过精确控制 C3N4 上金属纳米粒子的尺寸来提高光催化性能的简便方法。
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阿拉丁
triethanolamine
阿拉丁
H2AuCl6 ? 6H2O
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Urea
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