School of Environmental Science & Engineering, Nanjing Tech University, 30 Puzhu Southern Road, Nanjing, 211816, PR China.
School of Environmental Science & Engineering, Nanjing Tech University, 30 Puzhu Southern Road, Nanjing, 211816, PR China.
Chemosphere. 2018 Oct;208:800-807. doi: 10.1016/j.chemosphere.2018.06.050. Epub 2018 Jun 14.
In order to develop promising sorbents for value-added application of solid wastes, low-cost aluminum-enriched biochar was prepared from abandoned Tetra Pak used to hold milks, a paper-polyethylence-Al foil laminated package box, after acid pretreatment and subsequent slow pyrolysis under an oxygen-limited environment at 600 °C. The basic physicochemical properties of the resultant biochar were characterized and the sorption performance of aqueous As(III) and As(V) was investigated via batch and column sorption experiments. Carbon (49.1%), Ca (7.41%) and Al (13.5%) were the most abundant elements in the resultant biochar; and the specific surface area and the pH value at the point of zero charge (pHPZC) were 174 m g and 9.3, respectively. Batch sorption showed excellent sorption performance for both As(III) (24.2 mg g) and As(V) (33.2 mg g) and experimental data were fitted well with Langmuir model for the sorption isotherms and pseudo-second order kinetic model for the sorption kinetics. The residual concentrations of As(V) after sorption were below the limited value of arsenic in WHO Guidelines for Drinking water Quality (0.01 mg L) even if coexistence of PO. Column sorption confirmed the high sorption performance for As(III) and As(V). So the slow pyrolysis of abandoned Tetra Paks as low-cost and value-added sorbents is a sustainable strategy for solid waste disposal and wastewater treatment.
为了开发有价值的固体废物吸附剂,从废弃的 Tetra Pak(一种用于盛装牛奶的纸质聚乙烯铝箔层压包装盒)中,通过酸预处理和随后在 600°C 缺氧环境下的慢速热解,制备了低成本富铝生物炭。对所得生物炭的基本物理化学性质进行了表征,并通过批量和柱吸附实验研究了其对水溶液中 As(III)和 As(V)的吸附性能。所得生物炭中最丰富的元素为碳(49.1%)、钙(7.41%)和铝(13.5%);比表面积和零电荷点的 pH 值(pHpzc)分别为 174 m²/g 和 9.3。批量吸附实验结果表明,生物炭对 As(III)(24.2 mg/g)和 As(V)(33.2 mg/g)均具有优异的吸附性能,吸附等温线符合 Langmuir 模型,吸附动力学符合拟二级动力学模型。吸附后残留的 As(V)浓度低于世界卫生组织《饮用水水质准则》(0.01 mg/L)中砷的限量值,即使共存 PO。柱吸附实验证实了生物炭对 As(III)和 As(V)的高吸附性能。因此,废弃 Tetra Pak 的慢速热解作为一种低成本、高附加值的吸附剂,是固体废物处理和废水处理的可持续策略。