Recent Trends in Supercapacitor Research: Sustainability in Energy and Materials

Актуальные тенденции в исследованиях суперконденсаторов: устойчивость в энергетике и материалах
Valentine P. Ananikov, Daria V. Chernysheva, Н. В. Смирнова
2023-11-10

MXeneelectric double layer capacitors (EDLCs)gel polymer electrolytespseudocapacitive materialssupercapacitors
Supercapacitors (SCs) have emerged as critical components in applications ranging from transport to wearable electronics due to their rapid charge-discharge cycles, high power density, and reliability. This review offers an analysis of recent strides in supercapacitor research, emphasizing pivotal developments in sustainability, electrode materials, electrolytes, and 'smart SCs' designed for modern microelectronics with attributes such as flexibility, stretchability, and biocompatibility. Central to this discourse are two dominant electrode materials: carbon materials (CMs), primarily in electric double layer capacitors (EDLCs), and pseudocapacitive materials, involving oxides/hydroxides, chalcogenides, metal-organic frameworks, conductive polymers and metal nitrides such as MXene. Despite EDLCs' historical use, challenges such as low energy density persist, with heteroatom introduction into the carbon lattice seen as a solution. Concurrently, pseudocapacitive materials dominate recent studies, with efficiency enhancement strategies, such as the creation of hybrids based on different types of materials, surface structural engineering and doping, under exploration. Electrolyte innovation, especially the shift towards gel polymer electrolytes for flexible SCs, and the harmonization of electrode materials with SC designs are highlighted. Emphasis is given to smart SCs with novel attributes such as self-charging, self-healing, biocompatibility, and environmentally conscious designs. In summary, the article underscores the drive in sustainable supercapacitor research to achieve high energy and power density, steering towards SCs that are efficient and versatile and involving bioderived/biocompatible SC materials. This brief review is based on selected recent references, offering depth combined with an accessible overview of the SC landscape.
1
EDLCs suffer from low energy density, and heteroatom doping of carbon lattices is identified as a solution to improve energy storage.
2
Electrolyte innovation focuses on gel polymer electrolytes for flexible supercapacitors and on matching electrolytes with electrode designs for better performance.
3
Pseudocapacitive materials lead recent research, with efficiency enhanced by hybrid material formation, surface structural engineering, and doping strategies.
4
Smart supercapacitors with features like flexibility, stretchability, self-charging, self-healing, biocompatibility, and environmentally conscious/bioderived materials are emphasized as key sustainability trends.
5
Supercapacitors are critical for applications from transport to wearable electronics because of rapid charge-discharge, high power density, and reliability.
6
Two dominant electrode material classes are carbon materials for EDLCs and pseudocapacitive materials (oxides/hydroxides, chalcogenides, MOFs, conductive polymers, MXene).

Supercapacitors (including electrode materials, electrolytes, and device designs)

Recent trends in sustainable supercapacitor research focusing on electrode materials (carbon-based EDLCs and pseudocapacitive materials), electrolyte innovations (e.g., gel polymer electrolytes), hybrid/structural engineering and doping strategies, and smart SC functionalities (flexibility, stretchability, biocompatibility, self-charging/healing) to improve energy and power density and environmental compatibility

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2023-11-10
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Valentine P. Ananikov
Daria V. Chernysheva
Н. В. Смирнова
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