• 文献标题:   Engineering of 3D graphene hydrogel-supported MnO2-FeOOH nanoparticles with synergistic effect of oxidation and adsorption toward highly efficient removal of arsenic
  • 文献类型:   Article
  • 作  者:   ZHANG K, GUO FC, GRAHAM N, YU WZ
  • 作者关键词:   femn oxide, graphene hydrogel, synergistic effect, adsorptionoxidation, arsenic removal
  • 出版物名称:   ENVIRONMENTAL POLLUTION
  • ISSN:   0269-7491 EI 1873-6424
  • 通讯作者地址:  
  • 被引频次:   2
  • DOI:   10.1016/j.envpol.2022.120735 EA DEC 2022
  • 出版年:   2023

▎ 摘  要

Iron-manganese-based adsorbent has been regarded as a promising candidate for arsenic purification from water, especially the inorganic As(III), due to its inherent advantage of low cost and large-scale producibility. However, the nanoparticle aggregation, metal leaching and insufficient removal efficiency remain the main challenges in the practical applications of the granular adsorbents. In this work, we develop a universal strategy for the fabrication of an active Fe(III) oxyhydroxide-Mn(IV) oxide/3D graphene oxide (GO) gel composite via a simple hydrothermal reaction. The successful immobilization of Fe-Mn oxyhydroxide/oxides on the interconnected GO gels was intuitively confirmed by the transmission electron microscopy and atomic force microscopy. The combinative characterizations of the X-ray absorption near edge structure and X-ray photoelectron spectroscopy clearly reveal the electron transfer from Fe atoms to Mn atoms. The optimized Fe-Mn/GO composites possess the superior performance with the removal efficiency of over 90% for As(III) at pH 7.0 and similar to 97% for As(V) at pH 5.0 and the As(III, V) levels (100 mu g l(-1)) are reduced to below the WHO guideline of 10 mu g l(-1). The sorption isotherm and kinetic experiments on the As removal were also carried out. The post characterizations are employed to better unveil the oxidation-adsorption mechanism. Notably, the application of Fe-Mn/GO composites in the treatment of As-simulated natural water demonstrated a stable and continuous operation for over 20 days and an effluent concentration of arsenic as low as the 10 mu g l(-1) in a specially designed flow reactor.