Department of Chemistry, University of Cyprus, P.O. Box 20537, 1678 Nicosia, Cyprus.
Institute for Technology of Nuclear and Other Mineral Raw Materials, Franše d'Eperea 86, 11000 Belgrade, Serbia.
Bioresour Technol. 2021 Oct;337:125458. doi: 10.1016/j.biortech.2021.125458. Epub 2021 Jun 24.
In the framework of bio-circular economy, miscanthus biomass was valorized through a single-stage, low severity hydrothermal carbonization process. The produced hydrochars were characterized using elemental and spectroscopic methodologies. It was determined that as the temperature increased so did the C content (47.9 and 68.9% for the samples prepared at 180 and 260 °C, respectively), whereas the O content decreased (from 44.2 to 25.5%, respectively). The adsorption behaviour of the hydrochars was investigated in the adsorption of Cu and NH and MIS-180 was determined as the optimum sample, achieving q values of 310 and 71 mg g, respectively. Isotherm and kinetic analysis indicated the higher number of O-containing functional groups of MIS-180 as the main reason for its higher adsorption capacities. Furthermore, Cu adsorption followed the 2nd-order kinetic model, whereas NH adsorption followed the 1st-order kinetic model, due to the different mechanisms involved, inner-sphere and outer-sphere complex formation, respectively.
在生物循环经济框架下,通过单级、低强度水热碳化工艺对芒草生物质进行了增值利用。采用元素分析和光谱学方法对所制备的水炭进行了表征。结果表明,随着温度的升高,C 含量增加(分别为 180 和 260°C 下制备的样品的 47.9%和 68.9%),而 O 含量降低(分别为 44.2%和 25.5%)。研究了水炭对 Cu 和 NH 的吸附行为,结果表明 MIS-180 是最佳样品,分别达到 310 和 71mg/g 的 q 值。等温线和动力学分析表明,MIS-180 中含有更多的含氧官能团,是其具有更高吸附能力的主要原因。此外,Cu 吸附遵循二级动力学模型,而 NH 吸附遵循一级动力学模型,这是由于涉及的不同机制,分别为内球和外球络合形成。