Department of Civil Engineering, National Taiwan University, Tai-Pei City 10617, Taiwan.
Institute of Environmental Engineering and Management, National Taipei University of Technology, Tai-Pei City 10608, Taiwan.
J Nanosci Nanotechnol. 2021 Jun 1;21(6):3227-3236. doi: 10.1166/jnn.2021.19081.
Use of urban sludge, hospital sludge, and aquatic product sludge as a biochar adsorbent from wastewater treatment plants was investigated. Microwave carbonization was used to carbonize the sludge and then chemically activated at high temperatures to increase porosity and surface area. Effective of arsenic adsorption in water presents a newly designed metal doped to biochar. The biochar was characterized by scanning electron microscope (SEM) with energy dispersive X-ray (EDS), nitrogen adsorption/desorption isotherm analyzer (BET), thermo gravimetric analysis (TGA) and X-ray diffraction (XRD) analysis. Results display uniform pore sizes and high surface area (>490 m²g) of the biochar. Thence, urban sludge, hospital sludge, and aquatic product sludge can be used as carbon sources. The highest amount of Fe, Mn, and Ni loading onto the biochar was determined to be 8.0%, 6.0% and 10.0%, respectively. All biochar samples have arsenic adsorption capacities positively correlated with initial concentration. The corresponding removal efficiency of As(V) is 98% and As(III) is 84% at pH 3 with an adsorption capacity of 4.12 and 3.6 mg g, respectively. The adsorption capacity of As(V) and As(III) clearly decreased in the presence of PO₄ (2.34 and 1.46 mg g, respectively). Due to competition for adsorption sites, the PO₄ can effectively reduce arsenic adsorption. The arsenic species adsorption-desorption recycles on biochar are also discussed.
研究了城市污泥、医院污泥和水产养殖污泥作为污水处理厂生物炭吸附剂的应用。采用微波碳化法碳化污泥,然后在高温下进行化学活化,以增加孔隙率和比表面积。采用新设计的金属掺杂生物炭研究了水中砷的吸附效果。采用扫描电子显微镜(SEM)和能谱仪(EDS)、氮气吸附/脱附等温线分析仪(BET)、热重分析(TGA)和 X 射线衍射(XRD)对生物炭进行了表征。结果表明,生物炭具有均匀的孔径和较高的比表面积(>490 m²g)。因此,城市污泥、医院污泥和水产养殖污泥可用作碳源。确定生物炭上 Fe、Mn 和 Ni 的最大负载量分别为 8.0%、6.0%和 10.0%。所有生物炭样品的砷吸附量均与初始浓度呈正相关。在 pH 为 3 时,As(V)和 As(III)的去除效率分别为 98%和 84%,吸附容量分别为 4.12 和 3.6 mg g。在存在 PO₄(分别为 2.34 和 1.46 mg g)的情况下,As(V)和 As(III)的吸附容量明显下降。由于吸附位点的竞争,PO₄可以有效地减少砷的吸附。还讨论了生物炭上砷形态的吸附-解吸循环。