Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, China.
State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China.
Environ Sci Technol. 2022 Jul 5;56(13):9398-9407. doi: 10.1021/acs.est.2c01450. Epub 2022 Jun 23.
Electroplating sludge is a hazardous waste due to its high potential to leach toxic elements into the natural environment. To alleviate this issue, we tailored magnesium phosphate cement (MPC) as a low-carbon material for stabilization/solidification (S/S) of Zn-rich electroplating sludge. The interaction between MPC and ZnO was investigated to clarify the precipitate chemistry, microstructure transition, and chemical environment of Zn species in the MPC-treated Zn sludge system. Comprehensive characterization (by X-ray diffraction (XRD), P nuclear magnetic resonance (NMR), and extended X-ray absorption fine structure spectroscopy (EXAFS)) and thermodynamic modeling results revealed that the incorporated ZnO preferentially reacted with phosphate to form Zn(PO)·2HO/Zn(PO)·4HO, changing the orthophosphate environment in the MPC system. Stronger chemical bonding between Zn and phosphate in comparison to the bonding between Mg and phosphate also resulted in the formation of amorphous Zn(PO)·2HO/Zn(PO)·4HO. Zn(PO)·4HO precipitate appears to predominate at high {K}{H}{HPO} values, and the formation of Zn(PO)·2HO/Zn(PO)·4HO competed for the Mg sites in the MPC system, leading to the inhibition of formation of Mg-phosphate precipitates. Overall, this work uncovers the precipitate chemistry and microstructure transition of Zn species in the MPC system, providing new insights into the sustainable S/S of Zn-contaminated wastes by adopting MPC.
电镀污泥因其具有将有毒元素浸出到自然环境中的高潜力而被视为危险废物。为了解决这个问题,我们将磷酸镁水泥(MPC)作为一种低碳材料来稳定/固化(S/S)富含锌的电镀污泥。研究了 MPC 与 ZnO 的相互作用,以阐明在 MPC 处理的 Zn 污泥体系中沉淀化学、微观结构转变和 Zn 物种的化学环境。综合表征(X 射线衍射(XRD)、P 核磁共振(NMR)和扩展 X 射线吸收精细结构光谱(EXAFS))和热力学建模结果表明,掺入的 ZnO 优先与磷酸盐反应形成 Zn(PO)·2HO/Zn(PO)·4HO,改变了 MPC 体系中的正磷酸盐环境。与 Mg 和磷酸盐之间的键合相比,Zn 和磷酸盐之间更强的化学键也导致了无定形 Zn(PO)·2HO/Zn(PO)·4HO 的形成。在高{K}{H}{HPO}值下,Zn(PO)·4HO 沉淀似乎占主导地位,而 Zn(PO)·2HO/Zn(PO)·4HO 的形成竞争 MPC 体系中的 Mg 位,导致 Mg-磷酸盐沉淀的形成受到抑制。总的来说,这项工作揭示了 MPC 体系中 Zn 物种的沉淀化学和微观结构转变,为采用 MPC 对含 Zn 废物进行可持续 S/S 提供了新的见解。