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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Efficient removal of bisphenol-A by ultra-high surface area porous activated carbon derived from asphalt
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Efficient removal of bisphenol-A by ultra-high surface area porous activated carbon derived from asphalt

机译:通过衍生自沥青的超高表面积多孔活性炭高效除去双酚-A

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摘要

An ultra-high surface area porous activated carbon derived from low cost asphalt (AS) was synthesized and investigated for removal of bisphenol A (BPA), a common endocrine disrupting chemical (EDC) in wastewater and natural waters. Adsorption isotherms, kinetics and thermodynamics of BPA adsorption were determined and benchmarked against commercially purchased Darco G-60 activated carbon (AC). The surface area of AS was 3851 m(2)/g, which is 4.7-fold larger than that of AC (i.e., 813 m(2) /g). This correlates well with the 4-fold higher maximum BPA adsorption capacity on AS (1113 +/- 52 mg/g), and is consistent with the similar surface functionality of AS and AC (determined by Fourier-transform infrared spectroscopy). The maximum BPA adsorption capacity of AS is highest among reported carbon materials. BPA adsorption kinetics by both materials was limited by slow intraparticle diffusion into the small mesopores and micropores, which resulted in slightly slower adsorption rate for AS that had a greater proportion of micropores than AC. Thermodynamic analysis corroborated that BPA adsorption was favorable and occurred predominantly through pi-pi interaction as indicated by Raman spectroscopy. Overall, AS is a highly efficient adsorbent for removal of EDCs for water purification and could be considered for drinking water treatment and wastewater polishing. (C) 2018 Elsevier Ltd. All rights reserved.
机译:合成并研究了从低成本沥青(AS)的超高表面积多孔活性炭,并研究了在废水和天然水中的常见内分泌破坏化学(EDC)的双酚A(BPA)。测定BPA吸附的吸附等温,动力学和热力学,并针对商业购买的Darco G-60活性炭(AC)进行基准。表面积为3851μm(2)/ g,其比Ac的4.7倍(即813μm(2)/ g)。这与较高的最大BPA吸附容量有4倍,并且与AS和AS的类似表面功能一致(由傅立叶变换红外光谱法确定)一致。在报告的碳材料中最高的BPA吸附能力是最高的。通过两种材料的BPA吸附动力学受到慢性粒子分散到小型中孔和微孔的限制,这导致略微较慢的吸附速率,因为它具有比Ac更大比例的微孔。热力学分析证实,BPA吸附是有利的,并且主要通过拉曼光谱所示的PI-PI相互作用。总体而言,对于净水净化的EDCS的高效吸附剂,可以考虑饮用水处理和废水抛光。 (c)2018年elestvier有限公司保留所有权利。

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