基于海胆样La/Cu-Fe3O4纳米胶囊的超高效磷酸盐回收和水消毒的电磁场敏感桥

IF 23.2 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Youngkyun Jung, Ana Gabriela Chuquer Licto, Su-Jin Yoon, Kyung-Won Jung, Seongpil Jeong, Seunghak Lee, Kyungjin Cho, Jae-Woo Choi
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引用次数: 0

摘要

有效的磷酸盐回收和水消毒是解决环境可持续性挑战的关键。然而,传统的纳米材料表现出令人不满意的性能和有限的可控性,使其在废水处理中的应用变得复杂。在这里,我们提出了类似海胆的La/Cu-Fe3O4纳米胶囊(NCs),其特征是垂直的La/Cu纳米片围绕着Fe3O4纳米球核心。这些NCs是通过高密度吸附和控制结晶策略合成的,产生类似水滑石的结构,通过渗透压介导的机制增强磷酸盐的吸附和消毒。La/Cu-Fe3O4 NCs对磷酸盐的吸附能力高达1085.56 mg PO43−g-1,吸附动力学在5 min内达到平衡。共存离子促进了磷酸盐离子渗透到NCs中,促进了与La的稳定结合,在初始浓度高达10 mg PO43−L-1时,NCs的回收率达到100%。此外,NCs表现出优异的消毒活性,通过cu诱导的接触毒性,可使总大肠菌群失活~ 100%。电磁场诱导的nc自组装成桥,可以在水系统中控制部署,以防止二次污染和结垢。这种控制机制有助于在连续流系统中高效地回收磷酸盐和水消毒,在连续10次以上的吸附-解吸循环中,磷酸盐回收率达到~ 100%,性能一致,效率损失小于4%。我们的研究介绍了一种多功能纳米材料,它集成了高性能磷酸盐回收、快速消毒和电磁控制,为废水处理和资源回收提供了可扩展的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electromagnetic-field-sensitive bridges based on urchin-like La/Cu-Fe3O4 nanocapsules for ultra-efficient phosphate recovery and water disinfection

Efficient phosphate recovery and water disinfection are critical for addressing environmental sustainability challenges. However, conventional nanomaterials have exhibited unsatisfactory performance and limited controllability, complicating their application in wastewater treatment. Here, we propose urchin-like La/Cu-Fe3O4 nanocapsules (NCs) featuring perpendicular La/Cu nanosheets surrounding an Fe3O4 nanosphere core. These NCs were synthesized using high-density adsorption and a controlled crystallization strategy, yielding a hydrotalcite-like structure that enhances phosphate adsorption and disinfection through osmotic pressure-mediated mechanisms. The La/Cu-Fe3O4 NCs exhibited an exceptional phosphate adsorption capacity of up to 1085.56 mg PO43− g–1, with rapid adsorption kinetics achieving equilibrium within 5 min. Coexisting ions facilitated the penetration of phosphate ions into the NCs, promoting stable binding with La and achieving 100% recovery efficiency at an initial concentration of up to 10 mg PO43− L–1. Additionally, the NCs demonstrated superior disinfection activity, achieving ~ 100% inactivation of total coliform bacteria through Cu-induced contact toxicity. The electromagnetic-field-induced self-assembly of the NCs into bridges enables controlled deployment in aqueous systems to prevent secondary pollution and fouling. This control mechanism facilitates efficient phosphate recovery and water disinfection in continuous flow systems, achieving ~ 100% phosphate recovery efficiency with consistent performance for over 10 consecutive adsorption–desorption cycles with less than 4% efficiency loss. Our study introduces a multifunctional nanomaterial that integrates high-performance phosphate recovery, rapid disinfection, and electromagnetic control, offering a scalable solution for wastewater treatment and resource recovery.

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来源期刊
CiteScore
26.00
自引率
21.40%
发文量
185
期刊介绍: Advanced Composites and Hybrid Materials is a leading international journal that promotes interdisciplinary collaboration among materials scientists, engineers, chemists, biologists, and physicists working on composites, including nanocomposites. Our aim is to facilitate rapid scientific communication in this field. The journal publishes high-quality research on various aspects of composite materials, including materials design, surface and interface science/engineering, manufacturing, structure control, property design, device fabrication, and other applications. We also welcome simulation and modeling studies that are relevant to composites. Additionally, papers focusing on the relationship between fillers and the matrix are of particular interest. Our scope includes polymer, metal, and ceramic matrices, with a special emphasis on reviews and meta-analyses related to materials selection. We cover a wide range of topics, including transport properties, strategies for controlling interfaces and composition distribution, bottom-up assembly of nanocomposites, highly porous and high-density composites, electronic structure design, materials synergisms, and thermoelectric materials. Advanced Composites and Hybrid Materials follows a rigorous single-blind peer-review process to ensure the quality and integrity of the published work.
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