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微藻水热炭的特性及其作为一种从水溶液中去除 Cu(II)离子的低成本吸附剂的应用。

Characterization and application of microalgae hydrochar as a low-cost adsorbent for Cu(II) ion removal from aqueous solutions.

机构信息

Department of Environmental Science and Technology, Interdisciplinary Graduate School of Science and Engineering, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama, Kanagawa, 226-8502, Japan.

出版信息

Environ Sci Pollut Res Int. 2018 Nov;25(32):32721-32734. doi: 10.1007/s11356-018-3106-8. Epub 2018 Sep 22.

Abstract

Hydrochar prepared from the hydrothermal liquefaction of microalgae is characterized and investigated for copper removal from aqueous solution. Two hydrochars were prepared at 210 °C (HD210) and 250 °C (HD250). The effect of the initial solution pH, the initial Cu(II) concentration, the contact time, and the temperature will be investigated. According to the elemental analysis, the volatile matter in the hydrochars was lower and ash content was higher than those of microalgae. Also, pore characteristic analysis revealed that the surface area of the HD250 was higher than that of the HD210 suggesting a higher potential for the adsorption process. FTIR analysis and Boehm titration showed that both hydrochars contained oxygen-containing functional groups (OFG) on the surface which were effective for the copper removal. The adsorption experiments indicated that the amount of copper adsorbed reached a maximum value at the pH of 5 which was considered as the optimum solution pH. In addition, HD250 had a higher amount of copper adsorption than that of HD210 at all values of the solution pH. The adsorption data at the optimum solution pH was well fitted by the Langmuir's isotherm model and the adsorption process could be well described by the pseudo-2nd order kinetic model. Moreover, thermodynamic analysis revealed that copper adsorption onto the hydrochar was a physical endothermic process.

摘要

由微藻水热液化制备的水炭化物的特点及其对水溶液中铜的去除进行了研究。在 210°C(HD210)和 250°C(HD250)下制备了两种水炭化物。将考察初始溶液 pH 值、初始 Cu(II)浓度、接触时间和温度的影响。根据元素分析,水炭化物中的挥发性物质低于微藻,灰分含量高于微藻。此外,孔隙特征分析表明,HD250 的比表面积高于 HD210,表明其对吸附过程的潜在吸附能力更高。FTIR 分析和 Boehm 滴定表明,两种水炭化物的表面均含有含氧官能团(OFG),对铜的去除有效。吸附实验表明,在 pH 值为 5 时,吸附的铜量达到最大值,这被认为是最佳溶液 pH 值。此外,在所有溶液 pH 值下,HD250 的铜吸附量均高于 HD210。在最佳溶液 pH 值下,吸附数据很好地符合 Langmuir 等温线模型,吸附过程可以很好地用拟二级动力学模型描述。此外,热力学分析表明,铜在水炭化物上的吸附是一种物理吸热过程。

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