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双金属纳米粒子的物理、化学和生物合成方法综述及其在传感、水处理、生物医学、催化和储氢方面的应用。

A review of physical, chemical and biological synthesis methods of bimetallic nanoparticles and applications in sensing, water treatment, biomedicine, catalysis and hydrogen storage.

机构信息

I-Form Advanced Manufacturing Centre Research, Dublin City University, Glasnevin, Dublin 9, Ireland; EPSRC & SFI Centre for Doctoral Training (CDT) in Advanced Metallic Systems, School of Mechanical & Manufacturing Engineering, School of Chemical Sciences, Dublin City University, Glasnevin, Dublin 9, Ireland; Advanced Processing Technology Research Centre, Dublin City University, Glasnevin, Dublin 9, Ireland.

I-Form Advanced Manufacturing Centre Research, Dublin City University, Glasnevin, Dublin 9, Ireland; Advanced Processing Technology Research Centre, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

Adv Colloid Interface Sci. 2023 Nov;321:103010. doi: 10.1016/j.cis.2023.103010. Epub 2023 Sep 30.

DOI:10.1016/j.cis.2023.103010
PMID:37804661
Abstract

This article provides an in-depth analysis of various fabrication methods of bimetallic nanoparticles (BNP), including chemical, biological, and physical techniques. The review explores BNP's diverse uses, from well-known applications such as sensing water treatment and biomedical uses to less-studied areas like breath sensing for diabetes monitoring and hydrogen storage. It cites results from over 1000 researchers worldwide and >300 peer-reviewed articles. Additionally, the article discusses current trends, actionable recommendations, and the importance of synthetic analysis for industry players looking to optimize manufacturing techniques for specific applications. The article also evaluates the pros and cons of various fabrication methods, highlighting the potential of plant extract synthesis for mass production of capped BNPs. However, it warns that this method may not be suitable for certain applications requiring ligand-free surfaces. In contrast, physical methods like laser ablation offer better control and reactivity, especially for applications where ligand-free surfaces are critical. The report underscores the environmental benefits of plant extract synthesis compared to chemical methods that use hazardous chemicals and pose risks to extraction, production, and disposal. The article emphasizes the need for life cycle assessment (LCA) articles in the literature, given the growing volume of research on nanotechnology materials. This article caters to researchers at all stages and applies to various fields applying nanomaterials.

摘要

本文深入分析了双金属纳米粒子(BNP)的各种制造方法,包括化学、生物和物理技术。该综述探讨了 BNP 的多种用途,从众所周知的应用,如水质处理传感和生物医学应用,到研究较少的领域,如用于糖尿病监测的呼吸传感和储氢。它引用了来自全球 1000 多名研究人员和 300 多篇同行评议文章的结果。此外,本文还讨论了当前的趋势、可操作的建议,以及对于希望针对特定应用优化制造技术的行业参与者来说,合成分析的重要性。本文还评估了各种制造方法的优缺点,强调了植物提取物合成在大规模生产盖帽 BNPs 方面的潜力。然而,它警告说,这种方法可能不适合某些需要无配体表面的应用。相比之下,物理方法,如激光烧蚀,提供了更好的控制和反应性,特别是对于需要无配体表面的应用。与使用危险化学品并对提取、生产和处理构成风险的化学方法相比,该报告强调了植物提取物合成的环境效益。本文强调了在文献中增加生命周期评估(LCA)文章的必要性,因为关于纳米技术材料的研究越来越多。本文适合各个阶段的研究人员阅读,适用于应用纳米材料的各个领域。

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