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Reactor design for CO2 photo-hydrogenation toward solar fuels under ambient temperature and pressure

机译:在环境温度和压力下将CO2光氢化为太阳能的反应器设计

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摘要

Photo-hydrogenation of carbon dioxide (CO2) is a green and promising technology and has received much attention recently. This technique could convert solar energy under ambient temperature and pressure into desirable and sustainable solar fuels, such as methanol (CH3OH), methane (CH4), and formic acid (HCOOH). It is worthwhile to mention that this direction can not only potentially depress atmospheric CO2, but also weaken dependence on fossil fuel. Herein, 1 wt % Pt/CuAlGaO4 photocatalyst was successfully synthesized and fully characterized by ultraviolet-visible light (UV-vis) spectroscopy, X-ray diffraction (XRD), Field emission scanning electron microscopy using energy dispersive spectroscopy analysis (FE-SEM/EDS), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), and Brunauer-Emmett-Teller (BET), respectively. Three kinds of experimental photo-hydrogenation of CO2 in the gas phase, liquid phase, and gas-liquid phase, correspondingly, were conducted under different H-2 partial pressures. The remarkable result has been observed in the gas-liquid phase. Additionally, increasing the partial pressure of H-2 would enhance the yield of product. However, when an extra amount of H-2 is supplied, it might compete with CO2 for occupying the active sites, resulting in a negative effect on CO2 photo-hydrogenation. For liquid and gas-liquid phases, CH3OH is the major product. Maximum total hydrocarbons 8.302 mu molg(-1) is achieved in the gas-liquid phase.
机译:二氧化碳(CO2)的光氢化是一种绿色且有前途的技术,最近受到了广泛的关注。该技术可以将环境温度和压力下的太阳能转换为合乎需要且可持续的太阳能燃料,例如甲醇(CH3OH),甲烷(CH4)和甲酸(HCOOH)。值得一提的是,这个方向不仅可以潜在地抑制大气中的二氧化碳,而且可以削弱对化石燃料的依赖。本文成功合成了1 wt%的Pt / CuAlGaO4光催化剂,并通过紫外可见光(UV-vis)光谱,X射线衍射(XRD),使用能量色散光谱分析(FE-SEM / EDS),透射电子显微镜(TEM),X射线光电子能谱(XPS)和Brunauer-Emmett-Teller(BET)。分别在不同的H-2分压下进行了三种气相,液相和气-液相的CO2实验光氢化。在气相中观察到了显着的结果。另外,增加H-2的分压将提高产物的产率。但是,当提供过量的H-2时,它可能会与CO2竞争而占据活性位点,从而对CO2光氢化产生负面影响。对于液相和气液相,CH3OH是主要产品。气液相中的最大烃总量为8.302μmolg(-1)。

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