Recent Progress Using Graphene Oxide and Its Composites for Supercapacitor Applications: A Review

IF 3.1 4区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Inorganics Pub Date : 2024-05-22 DOI:10.3390/inorganics12060145
Ganesan Sriram, Muthuraj Arunpandian, Karmegam Dhanabalan, Vishwanath Rudregowda Sarojamma, Selvaraj David, Mahaveer D. Kurkuri, Tae Hwan Oh
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Abstract

Supercapacitors are prospective energy storage devices for electronic devices due to their high power density, rapid charging and discharging, and extended cycle life. Materials with limited conductivity could have low charge-transfer ions, low rate capability, and low cycle stability, resulting in poor electrochemical performance. Enhancement of the device’s functionality can be achieved by controlling and designing the electrode materials. Graphene oxide (GO) has emerged as a promising material for the fabrication of supercapacitor devices on account of its remarkable physiochemical characteristics. The mechanical strength, surface area, and conductivity of GO are all quite excellent. These characteristics make it a promising material for use as electrodes, as they allow for the rapid storage and release of charges. To enhance the overall electrochemical performance, including conductivity, specific capacitance (Cs), cyclic stability, and capacitance retention, researchers concentrated their efforts on composite materials containing GO. Therefore, this review discusses the structural, morphological, and surface area characteristics of GO in composites with metal oxides, metal sulfides, metal chalcogenides, layered double hydroxides, metal–organic frameworks, and MXene for supercapacitor application. Furthermore, the organic and bacterial functionalization of GO is discussed. The electrochemical properties of GO and its composite structures are discussed according to the performance of three- and two-electrode systems. Finally, this review compares the performance of several composite types of GO to identify which is ideal. The development of these composite devices holds potential for use in energy storage applications. Because GO-modified materials embrace both electric double-layer capacitive and pseudocapacitive mechanisms, they often perform better than pristine by offering increased surface area, conductivity, and high rate capability. Additionally, the density functional theory (DFT) of GO-based electrode materials with geometrical structures and their characteristics for supercapacitors are addressed.
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将氧化石墨烯及其复合材料应用于超级电容器的最新进展:综述
超级电容器具有功率密度高、充放电速度快、循环寿命长等优点,是电子设备的理想储能设备。电导率有限的材料可能会产生低电荷转移离子、低速率能力和低循环稳定性,从而导致电化学性能低下。通过控制和设计电极材料可以增强设备的功能。氧化石墨烯(GO)因其显著的理化特性,已成为制造超级电容器器件的一种前景广阔的材料。GO 的机械强度、表面积和导电性都相当出色。这些特性使其成为一种很有前途的电极材料,因为它们可以快速存储和释放电荷。为了提高整体电化学性能,包括电导率、比电容(Cs)、循环稳定性和电容保持率,研究人员集中精力研究含有 GO 的复合材料。因此,本综述讨论了在超级电容器应用中,GO 与金属氧化物、金属硫化物、金属瑀、层状双氢氧化物、金属有机框架和 MXene 复合材料的结构、形态和表面积特征。此外,还讨论了 GO 的有机功能化和细菌功能化。根据三电极和双电极系统的性能,讨论了 GO 及其复合结构的电化学特性。最后,本综述比较了几种 GO 复合类型的性能,以确定哪种类型最理想。这些复合装置的开发具有在储能应用中使用的潜力。由于 GO 改性材料同时具有双电层电容和伪电容机制,因此它们的性能往往优于原始材料,因为它们具有更大的表面积、导电性和更高的速率能力。此外,还探讨了具有几何结构的 GO 基电极材料的密度泛函理论(DFT)及其在超级电容器中的特性。
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来源期刊
Inorganics
Inorganics Chemistry-Inorganic Chemistry
CiteScore
2.80
自引率
10.30%
发文量
193
审稿时长
6 weeks
期刊介绍: Inorganics is an open access journal that covers all aspects of inorganic chemistry research. Topics include but are not limited to: synthesis and characterization of inorganic compounds, complexes and materials structure and bonding in inorganic molecular and solid state compounds spectroscopic, magnetic, physical and chemical properties of inorganic compounds chemical reactivity, physical properties and applications of inorganic compounds and materials mechanisms of inorganic reactions organometallic compounds inorganic cluster chemistry heterogenous and homogeneous catalytic reactions promoted by inorganic compounds thermodynamics and kinetics of significant new and known inorganic compounds supramolecular systems and coordination polymers bio-inorganic chemistry and applications of inorganic compounds in biological systems and medicine environmental and sustainable energy applications of inorganic compounds and materials MD
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