Khan Malik Dilshad, Opallo Marcin, Revaprasadu Neerish
Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224, Warsaw, Poland.
Department of Chemistry, University of Zululand, Private Bag X1001, Kwa-Dlangezwa 3880, South Africa.
Dalton Trans. 2021 Sep 7;50(33):11347-11359. doi: 10.1039/d1dt01742j. Epub 2021 Aug 9.
Renewable and sustainable functional nanomaterials, which can be employed in alternative green energy sources, are highly desirable. Transition metal chalcogenides are potential catalysts for processes resulting in energy generation and storage. In order to optimize their catalytic performance, high phase purity and precise control over shape and size are indispensable. Metal-organic precursors with pre-formed bonds between the metal and the chalcogenide atoms are advantageous in synthesizing phase pure transition metal chalcogenides with controlled shape and sizes. This can be achieved by the decomposition of metal-organic precursors in the presence of suitable surfactants/capping agents. However, the recent studies on electrocatalysis at the nanoscale level reveal that the capping agents attached to their surface have a detrimental effect on their efficiency. The removal of surfactants from active sites to obtain bare surface nanoparticles is necessary to enhance catalytic activity. Herein, we have discussed the properties of different metal-organic precursors and the role of surfactants in the colloidal synthesis of metal chalcogenide nanomaterials. Moreover, the effect of surfactants on their electrocatalytic performance, the commonly used strategies for removing surfactants from the surface of nanomaterials and the future perspectives are reviewed.
可再生且可持续的功能纳米材料在替代绿色能源中具有重要应用价值。过渡金属硫族化合物是能量产生和存储过程中的潜在催化剂。为优化其催化性能,高相纯度以及对形状和尺寸的精确控制必不可少。金属与硫族原子之间具有预形成键的金属有机前驱体在合成具有可控形状和尺寸的相纯过渡金属硫族化合物方面具有优势。这可通过在合适的表面活性剂/封端剂存在下分解金属有机前驱体来实现。然而,近期在纳米尺度水平上的电催化研究表明,附着在其表面的封端剂对其效率有不利影响。从活性位点去除表面活性剂以获得裸露表面的纳米颗粒对于提高催化活性是必要的。在此,我们讨论了不同金属有机前驱体的性质以及表面活性剂在金属硫族化合物纳米材料胶体合成中的作用。此外,综述了表面活性剂对其电催化性能的影响、从纳米材料表面去除表面活性剂常用的策略以及未来展望。