Jana Subhra
Department of Chemical, Biological & Macro-Molecular Sciences, S. N. Bose National Centre for Basic Sciences, Block - JD, Sector-III, Salt Lake, Kolkata 700098, India.
Dalton Trans. 2015 Nov 21;44(43):18692-717. doi: 10.1039/c5dt03699b.
Based on the bottom-up chemistry techniques, the size, shape, and composition controlled synthesis of nanoparticles can now be achieved uniformly, which is of great importance to the nanoscience community as well as in modern catalysis research. The low-temperature solution-phase synthesis approach represents one of the most attractive strategies and has been utilized to synthesize nanoscale metals, alloys and intermetallics, including a number of new metastable phases. This perspective will highlight the solution-based nanoparticle synthesis techniques, a low-temperature platform, for the synthesis of size and shape-tunable nanoscale transition metals, alloys, and intermetallics from the literature, keeping a focus on the utility of these nanomaterials in understanding the catalysis. For each solution-based nanoparticle synthesis technique, a comprehensive overview has been given for the reported nanoscale metals, alloys, and intermetallics, followed by critical comments. Finally, their enhanced catalytic activity and durability as novel catalysts have been discussed towards several hydrogenation/dehydrogenation reactions and also for different inorganic to organic reactions. Hence, the captivating advantages of this controllable low-temperature solution chemistry approach have several important implications and together with them this approach provides a promising route to the development of next-generation nanostructured metals, alloys, and intermetallics since they possess fascinating properties as well as outstanding catalytic activity.
基于自下而上的化学技术,现在可以均匀地实现纳米颗粒尺寸、形状和组成的可控合成,这对纳米科学界以及现代催化研究都非常重要。低温溶液相合成方法是最具吸引力的策略之一,已被用于合成纳米级金属、合金和金属间化合物,包括许多新的亚稳相。本文将重点介绍基于溶液的纳米颗粒合成技术,这是一个低温平台,用于从文献中合成尺寸和形状可调的纳米级过渡金属、合金和金属间化合物,重点关注这些纳米材料在理解催化作用方面的应用。对于每种基于溶液的纳米颗粒合成技术,本文对已报道的纳米级金属、合金和金属间化合物进行了全面概述,并给出了批判性评论。最后,讨论了它们作为新型催化剂在几种加氢/脱氢反应以及不同无机到有机反应中的增强催化活性和耐久性。因此,这种可控低温溶液化学方法的迷人优势具有几个重要意义,并且这种方法为下一代纳米结构金属、合金和金属间化合物的开发提供了一条有前景的途径,因为它们具有迷人的特性以及出色的催化活性。