大孔硅微反应器用于CO的优先氧化

N. J. Divins, E. López, J. Llorca, D. Vega, A. Rodríguez, F. G. de Rivera, I. Angurell, M. Rossell
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引用次数: 3

摘要

以Au/TiO2为催化剂,在氢的存在下,成功地实现了CO优先氧化(CO- prox)的功能化,得到了含有约4万个直径3.3 μm /平方毫米的规则通道的大孔硅微整体。硅微通道的功能化是通过在通道壁上生长SiO2层,然后与烷氧基钛前驱体交换并分解成TiO2,最后通过锚定碳硅硫醇树突保护预形成的金纳米颗粒来完成的。通过热活化在Au-TiO2界面上获得了催化活性中心。在H2/CO=0-20(摩尔)条件下,在363-433 K和λ=2条件下对CO- prox进行了测试,得到了催化层在大孔硅微单体微通道上良好的均匀性和粘附性。在H2/CO=20的条件下,大孔硅微单体每分钟可转化约3 NmL的CO,在433 K的微反应器中可转化mL的CO,这表明它对于便携式低温微燃料电池的氢净化特别有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macroporous silicon microreactor for the preferential oxidation of CO
A macroporous silicon micromonolith containing ca. 40,000 regular channels of 3.3 μm in diameter per square millimeter has been successfully functionalized with an Au/TiO2 catalyst for CO preferential oxidation (CO-PrOx) in the presence of hydrogen. The functionalization of the silicon microchannels has been accomplished by growing a SiO2 layer on the channel walls, followed by exchange with a titanium alkoxyde precursor and decomposition into TiO2 and, finally, by anchoring carbosilanethiol dendron protected pre-formed Au nanoparticles. Catalytically active centers at the Au-TiO2 interface have been obtained by thermal activation. With this method, an excellent homogeneity and adherence of the catalytic layer over the microchannels of the macroporous silicon micromonolith has been obtained, which has been tested for CO-PrOx at 363-433 K and λ=2 under H2/CO=0-20 (molar). The macroporous silicon micromonolith converts ca. 3 NmL of CO per minute and mL of micro reactor at 433 K under H2/CO=20, suggesting that it could be particularly effective for hydrogen purification in low-temperature microfuel cells for portable applications.
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