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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >3D graphene/delta-MnO2 aerogels for highly efficient and reversible removal of heavy metal ions
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3D graphene/delta-MnO2 aerogels for highly efficient and reversible removal of heavy metal ions

机译:3D石墨烯/δ-MnO2气凝胶,可高效且可逆地去除重金属离子

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Novel three-dimensional (3D) graphene/delta-MnO2 aerogels were fabricated via self-assembly and reduction of graphene oxide, followed by in situ solution-phase deposition of ultrathin delta-MnO2 nanosheets. The resultant graphene/delta-MnO2 architectures showed an interconnected 3D network microstructure, in which a large number of ultrathin birnessite MnO2 nanosheets were homogenously deposited on the graphene framework. Due to their unique structural characteristics, the resulting 3D aerogels exhibited a fast adsorption kinetic rate and superior adsorption capacity toward heavy metal ions. The saturated adsorption capacities of graphene/delta-MnO2 aerogels were as large as 643.62 mg g(-1) for Pb2+, 250.31 mg g(-1) for Cd2+ and 228.46 mg g(-1) for Cu2+ calculated by the Langmuir isotherm model, exceeding largely the corresponding pristine 3D graphene and delta-MnO2 nanosheets. It was noted that the heavy metal ions could not only adsorb on the surface of graphene/delta-MnO2, but also intercalate into the interlayer gaps of birnessite MnO2, which reveals the synergistic effect of the static electrical attraction, surface complexation and ion exchange between heavy metal ions and pre-intercalated K+, supported by the expansion of the basic crystal structure of layered MnO2 after adsorption. Furthermore, it is interesting that the regenerated aerogels after the initial HCl and subsequent KOH treatment still maintain their original shape and can be repeatedly used for more than eight cycles without obvious degradation of performance, which achieved the sustainability of the absorbents. More importantly, the hybrid aerogels can be easily separated and do not generate secondary contaminants. High removal efficiency, fast adsorption kinetics, excellent regeneration and reusability, and ease of separation operation make these hybrid aerogels ideal candidates for heavy metal ion decontamination in practical application.
机译:新型三维(3D)石墨烯/δ-MnO2气凝胶是通过自组装和氧化石墨烯的还原,然后原位固溶相沉积超薄δ-MnO2纳米片制成的。所得的石墨烯/δ-MnO2体系结构显示出相互连接的3D网络微观结构,其中大量超薄水钠锰矿MnO2纳米片均匀地沉积在石墨烯骨架上。由于其独特的结构特征,所得3D气凝胶显示出快速的吸附动力学速率和对重金属离子的优异吸附能力。根据Langmuir等温模型计算,石墨烯/δ-MnO2气凝胶对Pb2 +的饱和吸附容量高达643.62 mg g(-1),对Cd2 +的250.31 mg g(-1)和对Cu2 +的228.46 mg g(-1)。 ,大大超过了相应的原始3D石墨烯和δ-MnO2纳米片。值得注意的是,重金属离子不仅可以吸附在石墨烯/δ-MnO2的表面,而且可以嵌入水钠锰矿MnO2的层间间隙中,这揭示了静电吸引,表面络合和离子交换之间的协同作用。重金属离子和预先嵌入的K +,由吸附后层状MnO2的基本晶体结构的扩展支撑。此外,有趣的是,最初的HCl和随后的KOH处理后的再生气凝胶仍保持其原始形状,可以重复使用八次以上,而性能不会明显下降,从而实现了吸收剂的可持续性。更重要的是,混合气凝胶可以轻松分离,并且不会产生二次污染物。高去除效率,快速吸附动力学,出色的再生和可重复使用性以及易于分离的操作使这些混合气凝胶在实际应用中成为重金属离子净化的理想选择。

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