Molten salt electro‐preparation of graphitic carbons
Электрохимическое получение графитоподобных углеродных материалов в расплавленных солях
2023-01-09
SCID: 54.1/nztdtw54
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carbon dioxide conversionelectrochemical graphitizationenergy storage applicationsgraphitic carbonsmolten salt electrochemical synthesis
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Abstract (AI)
Abstract Graphite has been used in a wide range of applications since the discovery due to its great chemical stability, excellent electrical conductivity, availability, and ease of processing. However, the synthesis of graphite materials still remains energy‐intensive as they are usually produced through a high‐temperature treatment (>3000°C). Herein, we introduce a molten salt electrochemical approach utilizing carbon dioxide (CO2) or amorphous carbons as raw precursors for graphite synthesis. With the assistance of molten salts, the processes can be conducted at moderate temperatures (700–850°C). The mechanisms of the electrochemical conversion of CO2 and amorphous carbons into graphitic materials are presented. Furthermore, the factors that affect the graphitization degree of the prepared graphitic products, such as molten salt composition, working temperature, cell voltage, additives, and electrodes, are discussed. The energy storage applications of these graphitic carbons in batteries and supercapacitors are also summarized. Moreover, the energy consumption and cost estimation of the processes are reviewed, which provides perspectives on the large‐scale synthesis of graphitic carbons using this molten salt electrochemical strategy.
Key Findings
1
A molten-salt electrochemical strategy enables graphite synthesis from CO2 or amorphous carbon precursors at moderate temperatures of 700–850°C.
2
Graphitization degree is influenced by molten-salt composition, operating temperature, cell voltage, additives, and electrode selection.
3
The abstract presents mechanisms for electrochemical conversion of CO2 and amorphous carbons into graphitic materials.
4
The approach addresses the energy intensity of conventional graphite production, which typically requires heat treatment above 3000°C.
5
The resulting graphitic carbons have potential applications in batteries and supercapacitors, while energy consumption and cost assessments inform large-scale production.
Research Object
Molten-salt electrochemical conversion of CO2 and amorphous carbons into graphitic carbons
Research Subject
Mechanisms and process factors governing graphitization degree, energy consumption, cost, and energy-storage performance of the resulting graphitic carbons
Publication Details
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2023-01-09
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