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通过回收天然节节草制备稳定的四乙烯五胺修饰的有序介孔二氧化硅吸附剂

Preparation of stable tetraethylenepentamine-modified ordered mesoporous silica sorbents by recycling natural Equisetum ramosissimum.

作者信息

Liu Shou-Heng, Kuok Chi-Hong

机构信息

Department of Environmental Engineering, National Cheng Kung University, Tainan, 70101, Taiwan.

Department of Environmental Engineering, National Cheng Kung University, Tainan, 70101, Taiwan.

出版信息

Chemosphere. 2018 Jan;191:566-572. doi: 10.1016/j.chemosphere.2017.10.088. Epub 2017 Oct 16.

Abstract

It is well-known that global warming of the earth is caused by the progressive increase of CO concentration in the environment due to the huge utilization of fossil fuels. As a result, the development of an efficient and economic method to capture CO from large stationary sources, such as coal-fired power plants, cement and steel factories, and so on is urgent. In this study, ordered mesoporous silicas (E-SBA-15) have been prepared by using Equisetum ramosissimum plants as the silica sources and their subsequently incorporating with amino-containing compounds (tetraethylenepentamine, TEPA) and stabilizers (titanium isopropoxide, TIP). A variety of different spectroscopic and analytical techniques, such as nitrogen adsorption-desorption isotherms, low-angle X-ray diffraction (XRD), transmission electron microscopy (TEM), Fourier-transformed infrared (FTIR) spectroscopy, and thermogravimetric analysis (TGA) are used to characterize the physicochemical properties of various materials. CO adsorption capacities of prepared sorbents at 75 °C are obtained by TGA at atmospheric pressure. Among all sorbents, TEPA impregnated E-SBA-15 sorbents possess the highest CO sorption capacity (1.60 mmol CO g) under ambient pressure using dry 15% CO. However, TEPA/TIP incorporated E-SBA-15 sorbents exhibit enhanced durability during repeated sorption-desorption cycles compared to the above-mentioned sorbents. This significant enhancement in the stability of CO sorption-desorption process is most likely due to the decreased decomposition/leaching of TEPA which is restricted via the steric effect of TIP. These synthesized sorbents from inexpensive resources (agricultural waste) exhibit good sorbent capacity and surpassing regenerability, revealing a promising CO sorbent for the cost-effective applications in a cyclic adsorption process.

摘要

众所周知,由于化石燃料的大量使用,环境中二氧化碳(CO)浓度的逐步增加导致了地球的全球变暖。因此,开发一种高效且经济的方法从大型固定源(如燃煤发电厂、水泥厂和钢铁厂等)捕获CO迫在眉睫。在本研究中,以节节草植物为硅源,随后将其与含氨基化合物(四乙烯五胺,TEPA)和稳定剂(异丙醇钛,TIP)结合,制备了有序介孔二氧化硅(E-SBA-15)。使用多种不同的光谱和分析技术,如氮气吸附-脱附等温线、低角度X射线衍射(XRD)、透射电子显微镜(TEM)、傅里叶变换红外(FTIR)光谱和热重分析(TGA)来表征各种材料的物理化学性质。通过在大气压下的TGA获得制备的吸附剂在75°C时的CO吸附容量。在所有吸附剂中,TEPA浸渍的E-SBA-15吸附剂在使用干燥的15% CO的环境压力下具有最高的CO吸附容量(1.60 mmol CO/g)。然而,与上述吸附剂相比,TEPA/TIP掺入的E-SBA-15吸附剂在重复的吸附-脱附循环中表现出增强的耐久性。CO吸附-脱附过程稳定性的这种显著增强最可能是由于TEPA的分解/浸出减少,这是通过TIP的空间效应受到限制的。这些由廉价资源(农业废弃物)合成的吸附剂表现出良好的吸附剂容量和卓越的可再生性,揭示了一种在循环吸附过程中具有成本效益应用前景的CO吸附剂。

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