盐介导贵金属气凝胶的受控合成。

IF 13.1 1区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Beibei Weng, Xiaoyue Sun, Jialin Li, Shuna Hao, René Hübner, Yunjun Luo, Zhiyuan He, Ran Du
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引用次数: 0

摘要

贵金属气凝胶(nma)通常由金属纳米颗粒组装而成,因此将纳米结构金属的物理化学性质与气凝胶的独立多孔结构相结合。因此,nma在催化、传感和其他应用方面具有潜力,在这些应用中,对其结构和组成的可控操纵有助于其在基础科学和应用科学中的应用。然而,由于金属体系表现出特殊的凝胶行为,它们的制备仍然具有挑战性。在这里,我们详细介绍了使用盐(包括还原性硼氢化钠和氯化钠等普通盐)控制合成nma的逐步说明。该策略可以在室温(20-25°C)下快速合成具有可定制韧带尺寸(100 nm)和元素分布的nma。该方法的关键阶段是通过调节金属纳米颗粒与离子/配体的相互作用来控制其各向异性组装行为。阐述了合成条件和步骤,以保证重现性。我们展示了七种单组分nma和十多种多组分nma的制备,以及它们相应的表征和电催化应用。贵金属水凝胶的制备周期为7 ~ 15h,通过引入搅拌等干扰可将制备周期缩短至几分钟。后续提纯时间~ 48h,溶剂交换时间~ 16h,干燥时间12 ~ 24h,总时间4 ~ 5天,适合具有化学、材料科学等相关学科专业知识的用户使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlled synthesis of noble metal aerogels mediated by salts.

Noble metal aerogels (NMAs) are typically assembled from metal nanoparticles, thus combining the physicochemical properties of nanostructured metals with the self-standing porous architecture of aerogels. NMAs therefore have potential in catalysis, sensing and other applications where the controlled manipulation of their structure and composition facilitates their use in fundamental and applied sciences. However, their preparation remains challenging due to the particular gelation behavior displayed by metal systems. Here we detail the step-by-step instructions for the controlled synthesis of NMAs using salts, including reductive sodium borohydride and common salts such as sodium chloride. This strategy can rapidly synthesize NMAs with customizable ligament sizes (from <5 nm to >100 nm) and element distribution at room temperature (20-25 °C). The key stage of the approach is the control over the anisotropic assembly behavior of metal nanoparticles by tuning their interactions with ions/ligands. The synthesis conditions and procedures are elaborated to ensure reproducibility. We demonstrate the fabrication of seven single-component NMAs and over ten multicomponent NMAs, along with their corresponding characterizations and electrocatalytic applications. The fabrication period of noble metal hydrogels is 7-15 h, which can be shortened to a few minutes by introducing disturbances such as stirring. The subsequent purification time is ~48 h, the solvent exchange time is ~16 h and the drying time is 12-24 h. The total duration is 4-5 d. The procedure is suitable for users with expertise in chemistry, materials science and other related disciplines.

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来源期刊
Nature Protocols
Nature Protocols 生物-生化研究方法
CiteScore
29.10
自引率
0.70%
发文量
128
审稿时长
4 months
期刊介绍: Nature Protocols focuses on publishing protocols used to address significant biological and biomedical science research questions, including methods grounded in physics and chemistry with practical applications to biological problems. The journal caters to a primary audience of research scientists and, as such, exclusively publishes protocols with research applications. Protocols primarily aimed at influencing patient management and treatment decisions are not featured. The specific techniques covered encompass a wide range, including but not limited to: Biochemistry, Cell biology, Cell culture, Chemical modification, Computational biology, Developmental biology, Epigenomics, Genetic analysis, Genetic modification, Genomics, Imaging, Immunology, Isolation, purification, and separation, Lipidomics, Metabolomics, Microbiology, Model organisms, Nanotechnology, Neuroscience, Nucleic-acid-based molecular biology, Pharmacology, Plant biology, Protein analysis, Proteomics, Spectroscopy, Structural biology, Synthetic chemistry, Tissue culture, Toxicology, and Virology.
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