利用等离子体二维金属-氧化物杂化纳米界面实现高效、可持续的室温CO2转化

M. K. Akbari, Nasrin Siraj Lopa, S. Zhuiykov
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引用次数: 0

摘要

-最先进的纳米技术确保建立可持续的绿色二氧化碳转化系统。最近,等离子体二维(2D)纳米结构被发现是高效可见光辅助光催化的有效平台。在先进的二维半导体材料表面生长的等离子体纳米畴代表了一类新的杂化纳米结构。这些二维杂化纳米结构激活了材料异质界面上的补充机制,从而实现了广泛的太阳激活的物理化学反应。在本研究中,等离子体晶体银(Ag)纳米畴在液态ga基纳米颗粒的二维表面氧化膜上的受控生长,通过光催化和声激活技术的结合,实现了高效的CO 2转化。在声能的驱动下,ga2o3 -Ag半导体/等离子体杂化二维异质界面的多重贡献使二维等离子体杂化界面产生可见光辅助的热电子,从而使co2转换效率提高到94.6%以上。已开发的二维纳米结组件的固有等离子体特性以及声激活技术的商业可用性描绘了在工业水平上高效和可持续的CO 2转换的美好未来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient and Sustainable Room-Temperature CO2 Conversion by Plasmonic Two-Dimensional Metal-Oxide Hybrid Nano-Interfaces
- The state-of-the-art nanotechnologies ensure the establishment of sustainable green systems for CO 2 conversion. Recently, plasmonic two-dimensional (2D) nanostructures are found as effective platforms for efficient visible light-assisted photocatalysis. The plasmonic nanodomains grown on the surface of advanced 2D semiconductor materials represent a new class of hybrid nanostructures. These 2D hybrid nanostructures activate supplementary mechanisms at material heterointerfaces enabling a wide range of solar-activated physic-chemical reactions. Here, the controlled growth of plasmonic crystalline silver (Ag) nanodomains on the 2D surface oxide films of liquid Ga-based nanoparticles enabled the efficient CO 2 conversion through combined photocatalysis and acoustic-activated technique. Driven by acoustic energy, the multiple contribution of Ga 2 O 3 -Ag semiconductor/plasmonic hybrid 2D heterointerfaces enabled the visible-light assisted hot-electron generation at 2D plasmonic hybridinterfaces and therefore rose the CO 2 conversion efficiency to values higher than 94.6%. The inherent plasmonic characteristics of developed 2D nanojunction assembly accompanied by the commercial availability of acoustic activated technologies depict promising future for efficient and sustainable CO 2 conversion in industrial levels.
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