首页> 外文期刊>ACS Omega >A “One-Pot” Route for the Synthesis of Snowflake-like Dendritic CoNi Alloy-Reduced Graphene Oxide-Based Multifunctional Nanocomposites: An Efficient Magnetically Separable Versatile Catalyst and Electrode Material for High-Performance Supercapacitors
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A “One-Pot” Route for the Synthesis of Snowflake-like Dendritic CoNi Alloy-Reduced Graphene Oxide-Based Multifunctional Nanocomposites: An Efficient Magnetically Separable Versatile Catalyst and Electrode Material for High-Performance Supercapacitors

机译:合成雪花状树枝状CoNi合金还原石墨烯氧化物的多功能纳米复合材料的“一锅”方法:一种高性能的磁可分离多功能催化剂和电极材料,用于高性能超级电容器

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In this paper, a simple “one pot” methodology to synthesize snowflake-like dendritic CoNi alloy-reduced graphene oxide (RGO) nanocomposites has been reported. First-principles quantum mechanical calculations based on density functional theory (DFT) have been conducted to understand the electronic structures and properties of the interface between Co, Ni, and graphene. Detailed investigations have been conducted to evaluate the performance of CoNi alloy and CoNi-RGO nanocomposites for two different types of applications: (i) as the catalyst for the reduction reaction of 4-nitrophenol and Knoevenagel condensation reaction and (ii) as the active electrode material in the supercapacitor applications. Here, the influence of microstructures of CoNi alloy particles (spherical vs snowflake-like dendritic) and the effect of immobilization of CoNi alloy on the surface of RGO on the performance of CoNi-RGO nanocomposites have been demonstrated. CoNi alloy having a snowflake-like dendritic microstructure exhibited better performance than that of spherical CoNi alloy, and CoNi-RGO nanocomposites showed improved properties compared to CoNi alloy. The kapp value of the (CoNiD)60RGO40-catalyzed reduction reaction of 4-nitrophenol is 20.55 × 10–3 s–1, which is comparable and, in some cases, superior to many RGO-based catalysts. The (CoNiD)60RGO40-catalyzed Knoevenagel condensation reaction showed the % yield of the products in the range of 80–93%. (CoNiD)60RGO40 showed a specific capacitance of 501 F g–1 (at 6 A g–1), 21.08 Wh kg–1 energy density at a power density of 1650 W kg–1, and a retention of ~85% of capacitance after 4000 cycles. These results indicate that (CoNiD)60RGO40 could be considered as a promising electrode material for high-performance supercapacitors. The synergistic effect, derived from the hierarchical structure of CoNiD-RGO nanocomposites, is the origin for its superior performance. The easy synthetic methodology, high catalytic efficiency, and excellent supercapacitance performance make (CoNiD)60RGO40 an appealing multifunctional material.
机译:在本文中,已经报道了一种简单的“一锅法”方法来合成雪花状的树枝状CoNi合金还原的氧化石墨烯(RGO)纳米复合材料。已经进行了基于密度泛函理论(DFT)的第一性原理量子力学计算,以了解Co,Ni和石墨烯之间界面的电子结构和性质。已经进行了详细的研究,以评估CoNi合金和CoNi-RGO纳米复合材料在两种不同类型的应用中的性能:(i)作为4-硝基苯酚和Knoevenagel缩合反应的还原催化剂,以及(ii)作为活性电极超级电容器应用中的材料。在此,已证明了CoNi合金颗粒的微观结构(球形与雪花状的树枝状晶体)的影响以及CoNi合金在RGO表面的固定化对CoNi-RGO纳米复合材料性能的影响。与球形CoNi合金相比,具有雪花状树枝状微结构的CoNi合金具有更好的性能,并且与CoNi合金相比,CoNi-RGO纳米复合材料的性能有所改善。 (CoNiD)60RGO40催化的4-硝基苯酚还原反应的kapp值为20.55×10–3 s-1,这是可比的,并且在某些情况下优于许多基于RGO的催化剂。 (CoNiD)60RGO40催化的Knoevenagel缩合反应显示产物的%收率在80-93%的范围内。 (CoNiD)60RGO40的比电容为501 F g-1(在6 A g-1时),在功率密度为1650 W kg-1时的能量密度为21.08 Wh kg-1,保留的电容约为85% 4000个周期后。这些结果表明,(CoNiD)60RGO40可以被认为是高性能超级电容器的有希望的电极材料。源自CoNiD-RGO纳米复合材料的分层结构的协同效应是其卓越性能的根源。简便的合成方法,高催化效率和出色的超电容性能使(CoNiD)60RGO40成为有吸引力的多功能材料。

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