Synergistic Effects of ZnO@NiM′-Layered Double Hydroxide (M′ = Mn, Co, and Fe) Composites on Supercapacitor Performance: A Comparative Evaluation

IF 4.8 Q2 NANOSCIENCE & NANOTECHNOLOGY ACS Nanoscience Au Pub Date : 2024-09-16 DOI:10.1021/acsnanoscienceau.4c0002910.1021/acsnanoscienceau.4c00029
Gaurav Pandey, Surendra Serawat and Kamlendra Awasthi*, 
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Abstract

The development of supercapacitors is pivotal for sustainable energy storage solutions, necessitating the advancement of innovative electrode materials to supplant fossil-fuel-based energy sources. Zinc oxide (ZnO) is widely studied for use in supercapacitor electrodes because of its beneficial physicochemical properties, including excellent chemical and thermal stability, semiconducting characteristics, low cost, and environmentally friendly nature. In this study, ZnO nanorods were synthesized using a simple hydrothermal method and then combined with various Ni-based layered double hydroxides (LDHs) [NiM′-LDHs (M′ = Mn, Co, and Fe)] to improve the electrochemical performance of the ZnO nanorods. These LDHs are well-known for their outstanding electrochemical and electronic properties, high specific capacitance, and efficient dispersion of cations within host nanolayers. The synthesized composites ZnO@NiMn-LDH, ZnO@NiCo-LDH, and ZnO@NiFe-LDH exhibit enhanced specific capacitances of 569.3, 284.6, and 133.0 F/g, respectively, at a current rate of 1 A/g, outperforming bare ZnO (98.4 F/g). Notably, ZnO@NiMn-LDH demonstrates superior electrochemical performance along with a capacitance retention of 76%, compared to ZnO@NiCo-LDH (58%), ZnO@NiFe-LDH (49%), and bare ZnO (23%) over 5000 cycles. Furthermore, an asymmetric supercapacitor (ASC) was developed by using ZnO@NiMn-LDH as the positive electrode and activated carbon (AC) as the negative electrode to assess its practical applicability. The fabricated ASC (ZnO@NiMn-LDH//AC) demonstrated a specific capacitance of 45.22 F/g at a current rate of 1 A/g, an energy density of 16.08 W h/kg at a power density of 798.8 W/kg, and a capacitance retention of 75% over 5000 cycles. These findings underscore the potential of the composite formation of ZnO with Ni-based LDHs in advancing the efficiency and durability of supercapacitors.

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ZnO@NiM ' -层状双氢氧化物(M ' = Mn, Co,和Fe)复合材料对超级电容器性能的协同效应:比较评价
超级电容器的发展是可持续能源存储解决方案的关键,需要创新电极材料的进步来取代基于化石燃料的能源。氧化锌(ZnO)具有优异的化学和热稳定性、半导体特性、低成本和环境友好性等物理化学性质,被广泛研究用于超级电容器电极。本研究采用简单的水热法合成ZnO纳米棒,然后与各种ni基层状双氢氧化物(LDHs) [NiM ' -LDHs (M ' = Mn, Co, and Fe)]结合,以提高ZnO纳米棒的电化学性能。这些LDHs以其卓越的电化学和电子性能,高比电容以及阳离子在宿主纳米层内的有效分散而闻名。合成的复合材料ZnO@NiMn-LDH、ZnO@NiCo-LDH和ZnO@NiFe-LDH在电流速率为1 a /g时,比电容分别提高了569.3、284.6和133.0 F/g,优于裸ZnO (98.4 F/g)。值得注意的是,与ZnO@NiCo-LDH(58%)、ZnO@NiFe-LDH(49%)和裸ZnO(23%)相比,ZnO@NiMn-LDH在5000次循环中表现出优越的电化学性能和76%的电容保持率。在此基础上,以ZnO@NiMn-LDH为正极,活性炭(AC)为负极,研制了一种非对称超级电容器(ASC),以评估其实用性。所制备的ASC (ZnO@NiMn-LDH//AC)在电流速率为1 a /g时的比电容为45.22 F/g,在功率密度为798.8 W/kg时的能量密度为16.08 W h/kg,在5000次循环中电容保持率为75%。这些发现强调了ZnO与ni基LDHs复合形成在提高超级电容器效率和耐用性方面的潜力。
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来源期刊
ACS Nanoscience Au
ACS Nanoscience Au 材料科学、纳米科学-
CiteScore
4.20
自引率
0.00%
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0
期刊介绍: ACS Nanoscience Au is an open access journal that publishes original fundamental and applied research on nanoscience and nanotechnology research at the interfaces of chemistry biology medicine materials science physics and engineering.The journal publishes short letters comprehensive articles reviews and perspectives on all aspects of nanoscience and nanotechnology:synthesis assembly characterization theory modeling and simulation of nanostructures nanomaterials and nanoscale devicesdesign fabrication and applications of organic inorganic polymer hybrid and biological nanostructuresexperimental and theoretical studies of nanoscale chemical physical and biological phenomenamethods and tools for nanoscience and nanotechnologyself- and directed-assemblyzero- one- and two-dimensional materialsnanostructures and nano-engineered devices with advanced performancenanobiotechnologynanomedicine and nanotoxicologyACS Nanoscience Au also publishes original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials engineering physics bioscience and chemistry into important applications of nanomaterials.
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