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Enhanced photocatalytic reduction of CO2 to CO over BiOBr assisted by phenolic resin-based activated carbon spheres

机译:通过酚醛树脂基活性碳球的辅助增强CO 2的光催化减少CO2的CO 2。

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Photocatalytic reduction of CO _(2) using solar energy to decrease CO _(2) emission is a promising clean renewable fuel production technology. Recently, Bi-based semiconductors with excellent photocatalytic activity and carbon-based carriers with large specific surface areas and strong CO _(2) adsorption capacity have attracted extensive attention. In this study, activated carbon spheres (ACSs) were obtained via carbonization and steam activation of phenolic resin-based carbon spheres at 850 °C synthesized by suspension polymerization. Then, the BiOBr/ACSs sample was successfully prepared via a simple impregnation method. The as-prepared samples were characterized by XRD, SEM, EDX, DRS, PL, EIS, XPS, BET, CO _(2) adsorption isotherm and CO _(2) -TPD. The BiOBr and BiOBr/ACSs samples exhibited high CO selectivity for photocatalytic CO _(2) reduction, and BiOBr/ACSs achieved a rather higher photocatalytic activity (23.74 μmol g ~(?1) h ~(?1) ) than BiOBr (2.39 μmol g ~(?1) h ~(?1) ) under simulated sunlight irradiation. Moreover, the analysis of the obtained results indicates that in this photocatalyst system, due to their higher micropore surface area and larger micropore volume, ACSs provide enough physical adsorption sites for CO _(2) adsorption, and the intrinsic structure of ACSs can offer effective electron transfer ability for a fast and efficient separation of photo-induced electron–hole pairs. Finally, a possible enhanced photocatalytic mechanism of BiOBr/ACSs was investigated and proposed. Our findings should provide new and important research ideas for the construction of highly efficient photocatalyst systems for the reduction of CO _(2) to solar fuels and chemicals.
机译:光催化减少CO _(2)使用太阳能降低CO _(2)发射是一种有前途的清洁可再生燃料生产技术。最近,具有优异的光催化活性和具有大特定表面积的碳基载体的BI基半导体和强大的CO _(2)吸附能力引起了广泛的关注。在该研究中,通过悬浮聚合合成的850℃,通过碳化和蒸汽活化获得活性炭球(ACS),得到酚醛树脂基碳球的碳化和蒸汽活化。然后,通过简单的浸渍方法成功制备BioBR / ACSS样品。用XRD,SEM,EDX,DRS,PL,EIS,XPS,BET,CO _(2)吸附等温线和CO _(2)-TPD,表征了如制备的样品。 BioBR和BioBR / ACSS样品对光催化CO _(2)降低具有高CO选择性,并且BioBR / ACS达到相当更高的光催化活性(23.74μmolg〜(β1)H〜(α1))(2.39模拟阳光照射下μmolg〜(α1)H〜(α1)。此外,所获得的结果的分析表明,在这种光催化剂系统中,由于其较高的微孔表面积和更大的微孔体积,ACSS为CO _(2)吸附提供足够的物理吸附位点,并且ACSS的内在结构可以提供有效电子转移能力,用于快速有效地分离光诱导的电子孔对。最后,研究了并提出了BioBR / ACSS的可能增强的光催化机制。我们的调查结果应为建设高效的光催化剂系统,为减少CO _(2)到太阳能燃料和化学品提供新的和重要的研究思路。

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