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三維碳氣凝膠材料的制備與應用研究進展

Research progress in the preparation and application of three-dimensional carbon aerogel materials

  • 摘要: 依據碳氣凝膠制備原料的不同對其進行了分類,主要分為石墨基碳氣凝膠、有機碳氣凝膠和雜化碳氣凝膠三大類. 介紹了三維碳氣凝膠的常用制備方法,主要包括溶膠–凝膠法、水熱法、化學氣相沉積法和冰模板法,簡述了每種制備方法的優缺點,并分析了不同制備工藝對碳氣凝膠材料結構和性能的影響. 概述了碳氣凝膠材料在吸油、儲能、隔熱、催化、吸波、光熱轉化和柔性傳感器等領域的應用. 碳氣凝膠材料質輕、比表面積大、吸附容量高等優點,使其優于傳統吸油材料;高導電性以及電化學性能穩定,可被用作超級電容器電極材料、燃料電池催化劑、催化劑載體材料和柔性傳感器;超低的導熱系數,使其具有優異的隔熱性能;較高的阻抗匹配特性,使其能夠作為高效的電磁吸波材料;寬的光吸收范圍,使其在光熱轉化應用中具有良好的前景. 分析了目前碳氣凝膠材料制備和應用領域所存在的問題,基于此展望了其未來的發展趨勢和方向,包括開發低成本、可再生的環境友好的前驅體材料,優化碳氣凝膠制備工藝,縮短生產周期以及拓寬其高端應用領域.

     

    Abstract: Carbon aerogels are a class of three-dimensional (3D) porous structure material comprising carbon materials. This structure combines the advantages of low density, high porosity, large specific surface area of aerogel as well as low thermal conductivity, high conductivity, high thermal stability, and strong chemical inertness of carbon materials. Recently, they have become one of the research hotspots in the functional material field. Due to their distinctive properties, carbon aerogel materials have attracted increasing attention and exhibited great application prospects in the areas of high-temperature insulation, energy storage, photothermal conversion, electromagnetic wave absorption, adsorption, and catalysis. The synthetic route for carbon aerogels has been developed rapidly. Raw materials used for their preparation are not only limited to conventional crosslinked phenolic prepolymers, but they also include graphite materials, biomass, and polymers. In this paper, carbon aerogels are categorized into three based on the raw material used: graphite-based, organic, and hybrid carbon aerogels. Moreover, the common preparation methods for 3D carbon aerogels are introduced, including sol–gel method, hydrothermal method, chemical vapor deposition, and ice template method, advantages and disadvantages of each preparation method are briefly described, and their effects on the structure and properties of carbon aerogel materials are analyzed. Furthermore, the applications of carbon aerogel materials in the fields of oil absorption, energy storage, heat insulation, catalysis, wave absorption, photothermal conversion, and flexible sensors are summarized. Carbon aerogel materials have the advantages of light weight, large specific surface area, and high adsorption capacity, making them superior to traditional oil absorption materials. These materials can be used as supercapacitor electrode materials, fuel cell catalysts, catalyst carrier materials, and flexible sensors owing to their high conductivity and stable electrochemical performance. They can also be used as effective electromagnetic wave-absorbing materials due to their good impedance matching characteristic. Additionally, their ultralow thermal conductivity enables them to have an excellent thermal insulation performance, and their wide light absorption range makes it have a good prospect in photothermal conversion applications. Finally, the current issues on the preparation and application of carbon aerogel materials are analyzed. Furthermore, future development trends and directions are prospected, including developing low-cost, renewable, and environmentally friendly precursor materials, optimizing the preparation process of carbon aerogels, reducing the production cycle, and broadening the high-end application fields of carbon.

     

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