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首页> 外文期刊>ACS Omega >Hierarchical Micro/Mesoporous Carbons Synthesized with a ZnO Template and Petroleum Pitch via a Solvent-Free Process for a High-Performance Supercapacitor
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Hierarchical Micro/Mesoporous Carbons Synthesized with a ZnO Template and Petroleum Pitch via a Solvent-Free Process for a High-Performance Supercapacitor

机译:ZnO模板和石油沥青通过无溶剂工艺合成高性能超级电容器的分层微/介孔碳

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Hierarchical micro/mesoporous carbons were prepared using ZnO nanoparticles as hard templates and a petroleum industrial-residual pitch as the carbon source via a solvent-free process. The ZnO templates can be easily removed using HCl(aq), thereby avoiding limitations present in conventional porous silica templating approaches that require highly corrosive HF(aq) for template removal. Notably, the proposed solvent-free synthetic method from low-cost pitch to high-value porous carbons is a friendly process with respect to our overexploited environment. With the combination of ZnO nanoparticles and pitch, the surface area (76–548 m~(2) g~(–1)) of the resultant mesoporous carbons increases with an increase in the weight ratios of ZnO to pitch. Furthermore, the hierarchical micro/mesoporous carbons with a large surface area (854–1979 m~(2) g~(–1)) can be feasibly fabricated by only adding an appropriate amount of an activating agent. Meanwhile, N-doped hierarchical porous carbons can be achieved by carbonizing the blend of these materials with melamine. For supercapacitor application, the resultant carbons exhibit a high capacitance up to 200.5 F g~(–1) at 5 mV s~(–1) using LiClO_(4)/PC as the electrolyte in a symmetrical two-electrode cell. More importantly, the coin-cell supercapacitor based on porous carbons achieved a capacitance of 94 F g~(–1) at 5 mV s~(–1) and 63% capacitance retention at 500 mV s~(–1), thereby holding the potential for commercialization.
机译:经由无溶剂工艺,使用ZnO纳米颗粒作为硬模板并使用石油工业残余沥青作为碳源,制备了分层的微/中碳。可以使用HCl(aq)轻松去除ZnO模板,从而避免了在传统的多孔二氧化硅模板化方法中存在的局限性,而传统的多孔二氧化硅模板化方法需要高度腐蚀性的HF(aq)来去除模板。值得注意的是,相对于我们过度开采的环境,从低成本沥青到高价值多孔碳的无溶剂合成方法是一个友好的过程。结合ZnO纳米颗粒和沥青,所得的介孔碳的表面积(76-548 m〜(2)g〜(-1))随着ZnO与沥青的重量比的增加而增加。此外,仅添加适量的活化剂即可制造出具有较大表面积(854–1979 m〜(2)g〜(-1))的分层微/中碳。同时,可以通过将这些材料与三聚氰胺的混合物碳化来获得N掺杂的分级多孔碳。对于超级电容器应用,使用LiClO_(4)/ PC作为对称双电极电池中的电解质,在5 mV s〜(–1)时,所得碳表现出高达200.5 F g〜(–1)的高电容。更重要的是,基于多孔碳的纽扣电池超级电容器在5 mV s〜(-1)时达到94 F g〜(-1)的电容,在500 mV s〜(-1)时达到63%的电容保持率,从而保持了商业化的潜力。

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