Muhammad Shahbaz , Shahzad Sharif , Tayyaba Tur Rehman Afzal , Sundas Shahzad , Ayesha Shahzad , Onur Şahin , Abdulaziz Bentalib , Abdulrahman Bin Jumah , Sajjad Hussain , Nadir Ali Khan
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引用次数: 0
摘要
在现代,迫切需要设计一种同时具有超级电容器和电池特性的混合储能装置。毫无疑问,各种各样的电极材料都声称它们的效率很高,但金属有机骨架(MOFs)由于其高孔隙率和独特的电化学性能等显著特征而备受关注。在本文中,我们报道了具有矩形小孢子大小为0.27 × 0.52 nm的基于铈的三维MOF,用于混合储能装置的快速和选择性传输电荷。通过单晶x射线衍射(XRD)光谱和不同电分析工具的电化学性质进行了结构解析。在1 M KOH电解液中进行三电极组装,揭示了合成材料的效率和实际应用。用Dunn的方法研究了材料的扩散和电容贡献。该混合装置的比容量为101.3 C/g,比能量为21.11 Wh/kg,比功率为1237.78 W/kg,即使在5000 GCD循环后,循环稳定性仍为99%。重要的结果证明,这种材料是未来混合超级电容器的潜在竞争者。
Construction of rectangular microporous Cerium 3D metal organic framework for high performance energy storage devices
In modern era, there is a dire need to design a hybrid energy storage device showing properties of both supercapacitors and batteries. No doubt, various electrode materials have claimed their efficiency but metal organic frameworks (MOFs) have been focused significantly due to their salient features like high porosity and unique electrochemical properties. In this article, we report cerium-based 3D MOF having rectangular microspore sizes 0.27 × 0.52 nm for rapid and selective transport of charges to be used in hybrid energy storage devices. Structural elucidation was carried out thought single-crystal X-ray diffraction (XRD) spectroscopy and electrochemical attributes were delved via different electroanalytical tools. Three-electrode assembly in 1 M KOH electrolyte unearthed efficiency of the synthesized material and practical applications were divulged through two-electrode assembly by fabricated hybrid device. Diffusive and capacitive contribution of the material was investigated by Dunn's method. The hybrid device showed specific capacityof 101.3 C/g, specific energy of 21.11 Wh/kg and specific power of 1237.78 W/kg with cyclic stability of 99 % even after 5000 GCD cycles. Significant results proved that the material is a prospective contender for futuristic hybrid supercapacitors.
期刊介绍:
Covering major developments in the field of solid state chemistry and related areas such as ceramics and amorphous materials, the Journal of Solid State Chemistry features studies of chemical, structural, thermodynamic, electronic, magnetic, and optical properties and processes in solids.