Department of Civil and Environmental Engineering, Dankook University, 152, Jukjeon-ro, Suji-gu, Yongin-si, Gyeonggi-do, Republic of Korea.
Department of Civil and Environmental Engineering, Dankook University, 152, Jukjeon-ro, Suji-gu, Yongin-si, Gyeonggi-do, Republic of Korea.
Chemosphere. 2024 Aug;362:142864. doi: 10.1016/j.chemosphere.2024.142864. Epub 2024 Jul 15.
Effective removal of phosphate from water is essential for preventing the eutrophication and worsening of water quality. This study aims to enhance phosphate removal by synthesizing starch-stabilized ferromanganese binary oxide (FMBO-S), discover the factors, and investigate adsorption mechanisms. FMBO and FMBO-S properties were studied using Scanning Electron Microscopy, BET analysis, Polydispersity Index (PDI), Fourier Transform Infrared Spectroscopy, and X-ray Photoelectron Spectroscopy (XPS). After starch loading, the average pore diameter increased from 14.89 Å to 25.16 Å, and significantly increased the pore volume in the mesopore region. FMBO-S showed a PDI value below 0.5 indicating homogeneous size dispersity and demonstrated faster and higher adsorption capacity: 61.24 mg g > 28.57 mg g. Both FMBO and FMBO-S adsorption data fit well with the pseudo-second-order and Freundlich models, indicating a chemisorption and multilayered adsorption process. The phosphate adsorption by FMBO was pH-dependent, suggesting electrostatic attraction as the dominant mechanism. For the FMBO-S, phosphate adsorption was favored in a wide pH range, despite the weaker electrostatic attraction as evident from the point of zero charge and zeta potential values, indicating ligand exchange as a main mechanism. Moreover, the XPS analysis shows a significant change in the proportion of Fe species for FMBO-S than FMBO after phosphate adsorption, indicating significant involvement of Fe. Meanwhile, phosphate adsorption was almost unaffected by the presence of Cl, NO, and SO anions, whereas CO significantly reduced the adsorption capacity. This study revealed that FMBO-S could be a promising, low-cost adsorbent for phosphate removal and recovery from water.
从水中有效去除磷酸盐对于防止富营养化和水质恶化至关重要。本研究旨在通过合成淀粉稳定的铁锰二元氧化物(FMBO-S)来提高磷酸盐的去除率,发现影响因素,并研究吸附机制。使用扫描电子显微镜、BET 分析、多分散指数(PDI)、傅里叶变换红外光谱和 X 射线光电子能谱(XPS)对 FMBO 和 FMBO-S 的性质进行了研究。淀粉负载后,平均孔径从 14.89Å 增加到 25.16Å,并且显著增加了中孔区域的孔体积。FMBO-S 的 PDI 值低于 0.5,表明尺寸分散均匀,并表现出更快和更高的吸附容量:61.24mg/g>28.57mg/g。FMBO 和 FMBO-S 的吸附数据均很好地符合准二级和 Freundlich 模型,表明是化学吸附和多层吸附过程。FMBO 的磷酸盐吸附受 pH 影响,表明静电引力是主要机制。对于 FMBO-S,尽管由于零电荷和 ζ 电位值表明配体交换是主要机制,静电引力较弱,但在较宽的 pH 范围内仍有利于磷酸盐吸附。此外,XPS 分析表明,FMBO-S 比 FMBO 在吸附磷酸盐后,Fe 物种的比例发生了显著变化,表明 Fe 显著参与了吸附。同时,磷酸盐吸附几乎不受 Cl、NO 和 SO 阴离子的存在影响,而 CO 则显著降低了吸附容量。本研究表明,FMBO-S 可能是一种很有前途的、低成本的吸附剂,可用于从水中去除和回收磷酸盐。