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利用木质素基活性炭提高非极性苯蒸气的吸附性能。

Improving the adsorption performance of non-polar benzene vapor by using lignin-based activated carbon.

机构信息

Department of Environmental Engineering, Faculty of Engineering and Architecture, Kastamonu University, 37150, Kastamonu, Türkiye.

出版信息

Environ Sci Pollut Res Int. 2023 Oct;30(50):108706-108719. doi: 10.1007/s11356-023-30046-1. Epub 2023 Sep 26.

Abstract

Both indoor and outdoor contamination continually contain benzene vapor. It has primary concerns about long-term health risks to the living environment. Benzene is a crucial airborne pollutant in the environment due to its apparent acute toxicity, high volatility, and poor degradability. It is especially urgent to restrain benzene emissions due to the persistent concentration increase and stringent processes. Benzene adsorption is a highly efficient mechanism with low cost, low energy consumption, and a simple process. In this study, biomass-derived porous carbon materials (TCACs) were synthesized by pyrolysis activation combined with HPO, HNO, and HCl. TCAC44 has the best activation conclusion, showing that surface area and pore volume were 1107 m/g and 0.58 cm/g treated with HPO and so was chosen for subsequent benzene adsorption/desorption tests. The adsorption capacities of benzene for TCAC44 were increased from 58 mg/g for 35 °C + 95% RH to 121 mg/g for 25 °C + 15% RH and presented a higher adsorption capacity of benzene than TCAC101 and TCAC133. Otherwise, well recyclability of TCAC44 was revealed as the benzene adsorption capacity reductions were 22.49% after five adsorption-desorption cycles. Furthermore, the present study established the property-application relationships to promote and encourage future research on the newly synthesized innovative TCAC44 for benzene removal.

摘要

室内和室外污染持续含有苯蒸气。它主要关注生活环境对长期健康的风险。由于其明显的急性毒性、高挥发性和较差的降解性,苯是环境中重要的空气污染物。由于持续的浓度增加和严格的工艺,抑制苯排放尤为紧迫。苯吸附是一种高效的机制,具有低成本、低能耗和简单的工艺。在本研究中,通过热解活化结合 HPO、HNO 和 HCl 合成了生物质衍生的多孔碳材料(TCACs)。TCAC44 的活化效果最好,表明经 HPO 处理后的比表面积和孔体积分别为 1107 m/g 和 0.58 cm/g,因此选择其进行后续的苯吸附/解吸测试。TCAC44 的苯吸附容量从 35°C+95%RH 时的 58 mg/g 增加到 25°C+15%RH 时的 121 mg/g,呈现出比 TCAC101 和 TCAC133 更高的苯吸附容量。此外,TCAC44 还表现出良好的可回收性,经过五次吸附-解吸循环后,苯吸附容量的降低率仅为 22.49%。此外,本研究建立了性能-应用关系,以促进和鼓励未来对新合成的创新 TCAC44 用于去除苯的研究。

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