Bhosale Rakhee, Bhosale Sneha, Narale Dattatray, Jambhale Chitra, Kolekar Sanjay
Analytical Chemistry and Material Science Research Laboratory, Department of Chemistry, Shivaji University, Kolhapur 416 004, India.
Langmuir. 2023 Aug 29;39(34):12075-12089. doi: 10.1021/acs.langmuir.3c01337. Epub 2023 Aug 14.
The high surface-to-volume ratio and extraordinarily large-surface area of two-dimensional (2D) metal-organic framework (MOF) architectures have drawn particular interest for use in supercapacitors. To achieve an excellent electrode material for supercapacitors, well-defined 2D nanostructures of novel trimetallic MOFs were developed for supercapacitor applications. Multivariate MOFs (terephthalate and trimesate MOF) with distinctive nanobrick and nanoplate-like structures were successfully synthesized using a straightforward one-step reflux condensation method by combining Ni, Co, and Zn metal species in equimolar ratios with two different ligands. Furthermore, the effects of the tricarboxylic and dicarboxylic ligands on cyclic voltammetry, charge-discharge cycling, and electrochemical impedance spectroscopy were studied. The derived terephthalate and trimesate MOFs are supported with stainless-steel mesh and provide a suitable electrolyte environment for rapid faradaic reactions with an elevated specific capacity, excellent rate capability, and exceptional cycling stability. It shows a specific capacitance of 582.8 F g, a good energy density of 40.47 W h kg, and a power density of 687.5 W kg at 5 mA cm with an excellent cyclic stability of 92.44% for 3000 charge-discharge cycles. A symmetric BDC-MOF//BDC-MOF supercapacitor device shows a specific capacitance of 95.22 F g with low capacitance decay, high energy, and power densities which is used for electronic applications. These brand-new trimetallic MOFs display outstanding electrochemical performance and provide a novel strategy for systematically developing high-efficiency energy storage systems.
二维(2D)金属有机框架(MOF)结构的高表面积与体积比以及超大表面积使其在超级电容器中的应用备受关注。为了获得用于超级电容器的优异电极材料,开发了具有明确二维纳米结构的新型三金属MOF用于超级电容器应用。通过将镍、钴和锌金属物种以等摩尔比与两种不同配体结合,采用简单的一步回流缩合方法成功合成了具有独特纳米砖和纳米板状结构的多变量MOF(对苯二甲酸酯和均苯三甲酸酯MOF)。此外,研究了三羧酸和二羧酸配体对循环伏安法、充放电循环和电化学阻抗谱的影响。衍生的对苯二甲酸酯和均苯三甲酸酯MOF负载在不锈钢网上,并为快速法拉第反应提供合适的电解质环境,具有提高的比容量、优异的倍率性能和出色的循环稳定性。在5 mA cm时,其比电容为582.8 F g,能量密度为40.47 W h kg,功率密度为687.5 W kg,在3000次充放电循环中具有92.44%的优异循环稳定性。对称的BDC - MOF//BDC - MOF超级电容器装置显示出95.22 F g的比电容,具有低电容衰减、高能量和功率密度,可用于电子应用。这些全新的三金属MOF展现出卓越的电化学性能,并为系统开发高效储能系统提供了一种新策略。