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煤氣化渣制備功能微納材料研究進展

Research progress on the preparation of functional micro/nano materials from coal gasification slag

  • 摘要: 富煤、貧油、少氣的能源結構決定了我國煤炭消費量巨大的現狀. 煤氣化技術作為煤炭清潔高效利用的關鍵技術得到快速發展,煤氣化渣固廢的排放問題也隨之日益嚴重. 目前煤氣化渣處置方式以堆放和填埋為主,造成了土地資源的浪費和環境污染. 為了實現煤化工的綠色可持續發展,亟需解決煤氣化渣高效處置的問題. 煤氣化渣中含有豐富的鋁、硅、殘碳資源,為制備高附加值材料提供了巨大的潛力,引起了研究者們的廣泛關注. 基于煤氣化渣的產生過程,詳細介紹了其成分與微觀形貌,并系統闡述了煤氣化渣合成介孔二氧化硅、多孔碳、碳–硅介孔復合材料、沸石以及沸石–碳復合材料的制備方法. 進一步深入探討了煤氣化渣基功能微納材料在吸附劑、催化劑、填充材料、超級電容器、微波吸收材料等方面的廣泛應用. 最后,對煤氣化渣資源利用中存在的問題進行了探討,并展望了其未來的發展趨勢,旨在為煤氣化渣的綜合利用提供一些參考.

     

    Abstract: The energy structure, characterized by abundant coal, limited oil, and gas shortages, contributes to China’s prevalent coal consumption. In the context of carbon peaking and carbon neutrality, coal combustion exacerbates environmental pollution, highlighting the urgent need to promote clean and efficient coal use. As coal gasification technology rapidly advances as a pivotal method for achieving cleaner and more efficient coal use, the challenge of effectively managing coal gasification solid waste becomes increasingly important. The substantial carbon content and complex distribution of carbon and inorganic minerals in coal gasification residue hinder its comprehensive use in building materials and mixed combustion processes. Consequently, the primary disposal methods for coal gasification slag remain stacking and landfilling, which waste land resources and pollute the environment. To realize sustainable and eco-friendly development within the coal chemical industry, addressing the efficient disposal of coal gasification slag is of paramount importance. An abundance of aluminum, silicon, and carbon residue resources endows coal gasification slag with immense potential for the production of high-value-added materials, garnering considerable attention from researchers. The inorganic mineral composition of coal gasification slag is rich in silicon oxide, alumina, and iron oxide components, which can be harnessed for synthesizing zeolite, mesoporous silica, and various micro/nano materials. The carbon residue within coal gasification slag exists in a flocculent porous form, exhibiting a certain degree of graphitization and possessing a large specific surface area, thereby facilitating the production of porous carbon materials. Moreover, a strategy of simultaneous use of carbon and ash can be leveraged to prepare carbon–silicon mesoporous and zeolite–carbon composite materials from coal gasification slag. Looking ahead, based on large-scale coal gasification slag consumption through bulk resource use, the high-value utilization path of coal gasification slag must be further explored to increase the added value of the industry. Building upon the understanding of the production process of coal gasification slag, this paper introduces the composition and micromorphology of coal gasification slag while systematically detailing the preparation methods for synthesizing mesoporous silica, porous carbon, carbon–silicon mesoporous composite materials, zeolite, and zeolite–carbon composite materials. Additionally, the paper delves into the applications of functional micro/nano materials derived from coal gasification slag across various domains, such as adsorbents, catalysts, filling materials, supercapacitors, and microwave-absorbing materials. Finally, the existing problems and future development trends of coal gasification slag resource usage are addressed, aiming to provide guidance for the comprehensive use of coal gasification slag.

     

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