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Mass Transfer-Promoted Fe^(2+)/Fe^(3+)Circulation Steered by 3D Flow-Through Co-Catalyst System Toward Sustainable Advanced Oxidation Processes
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作者 weiyang lv Hao Li +6 位作者 Jinhui Wang Lixin Wang Zenglong Wu Yuge Wang Wenkai Song Wenkai Cheng Yuyuan Yao 《Engineering》 SCIE EI CAS CSCD 2024年第5期264-275,共12页
Realizing fast and continuous generation of reactive oxygen species(ROSs)via iron-based advanced oxidation processes(AOPs)is significant in the environmental and biological fields.However,current AOPs assisted by co-c... Realizing fast and continuous generation of reactive oxygen species(ROSs)via iron-based advanced oxidation processes(AOPs)is significant in the environmental and biological fields.However,current AOPs assisted by co-catalysts still suffer from the poor mass/electron transfer and non-durable promotion effect,giving rise to the sluggish Fe^(2+)/Fe^(3+)cycle and low dynamic concentration of Fe^(2+)for ROS production.Herein,we present a three-dimensional(3D)macroscale co-catalyst functionalized with molybdenum disulfide(MoS_(2))to achieve ultra-efficient Fe^(2+)regeneration(equilibrium Fe^(2+)ratio of 82.4%)and remarkable stability(more than 20 cycles)via a circulating flow-through process.Unlike the conventional batch-type reactor,experiments and computational fluid dynamics simulations demonstrate that the optimal utilization of the 3D active area under the flow-through mode,initiated by the convectionenhanced mass/charge transfer for Fe^(2+)reduction and then strengthened by MoS_(2)-induced flow rotation for sufficient reactant mixing,is crucial for oxidant activation and subsequent ROS generation.Strikingly,the flow-through co-catalytic system with superwetting capabilities can even tackle the intricate oily wastewater stabilized by different surfactants without the loss of pollutant degradation efficiency.Our findings highlight an innovative co-catalyst system design to expand the applicability of AOPs based technology,especially in large-scale complex wastewater treatment. 展开更多
关键词 Advanced oxidation processes 3D co-catalyst Flow-through mode Enhanced mass transfer Complex wastewater treatment
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层状双金属氢氧化物的控制合成及其在水处理中的应用 被引量:7
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作者 吕维扬 孙继安 +2 位作者 姚玉元 杜淼 郑强 《化学进展》 SCIE CAS CSCD 北大核心 2020年第12期2049-2063,共15页
层状双金属氢氧化物(LDH)作为无机层状粒子的典型代表,已在众多应用领域展现出巨大潜力。然而,目前的研究大多从LDH的层板组成、层间阴离子种类以及粒子尺寸的角度入手对其进行功能优化,较少关注形貌结构对LDH性能的影响。本文从简要介... 层状双金属氢氧化物(LDH)作为无机层状粒子的典型代表,已在众多应用领域展现出巨大潜力。然而,目前的研究大多从LDH的层板组成、层间阴离子种类以及粒子尺寸的角度入手对其进行功能优化,较少关注形貌结构对LDH性能的影响。本文从简要介绍LDH的基本结构和性质出发,详细总结了常规六方片状以及特殊形貌(球状、多面体状、纳米线状、环状等)LDH的制备方法。结合LDH与其他功能粒子复合以提升其综合性能的需求,深入分析了反应配方、合成条件以及基体表面性质对LDH复合材料形貌的调控规律,并综述LDH及其复合物分别作为吸附、催化和分离材料在水处理中的应用。最后,对当前控制合成LDH所存在的难点及其未来研究方向进行了展望。 展开更多
关键词 层状双金属氢氧化物 制备方法 形貌调控 复合材料 水环境修复
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