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分子筛/石墨烯复合电极材料电化学性能的对比研究   总被引:1,自引:1,他引:0       下载免费PDF全文
利用溶液共混法制备得到分子筛/石墨烯(RGO)复合电极材料。比较了分子筛(4A、13X、SBA-15)种类、煅烧温度以及分子筛与氧化石墨烯(GO)质量比等因素,对分子筛/RGO复合电极材料电化学性能的影响。采用X射线衍射(XRD)、孔径分析、扫描电镜(SEM)和电化学测试等分析方法考察了3种复合电极材料的结构、形貌及电化学性能。结果表明,RGO可以将4A很好地包覆,且4A均匀镶嵌在RGO层间并阻止RGO团聚,形成了三维空间导电网络结构,13X、SBA-15并不能完全被RGO包裹,RGO层间团聚现象仍较严重,不能形成三维导电网络结构。当分子筛与RGO质量比为6∶1,煅烧温度为320°C时,在4 A/g电流密度下,4A/RGO复合电极材料的比电容为450 F/g,而相应的13X/RGO、SBA-15/RGO复合电极材料的比电容分别为195、43 F/g。4A/RGO复合电极材料优异的超级电容性能可归于4A与RGO之间较强的协同效应。  相似文献   
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Drinking water shortage has become worse in recent decades. A new capacitive deionization (CDI) method for increasing water supplies through the effective desalination of seawater has been developed. Silver as nano Ag and Ag@C which was prepared by carbonization of the Ag+-β-cyclodextrin complex at 573 K for 30 min can add the antimicrobial function into the CDI process. The Ag@C and Ag nanoparticles dispersed on reduced graphene oxide (Ag@C/rGO and nano Ag/rGO) were used as the CDI electrodes. The nano Ag/rGO and Ag@C/rGO electrodes can reduce the charging resistant, and enhance the electrosorption capability. Better CDI efficiencies with the nano Ag/rGO and Ag@C/rGO electrodes can therefore be obtained. When reversed the voltage, the electrodes can be recovered up to 90% within 5 min. This work presents the feasibility for the nano Ag and Ag@C on rGO electrodes applied in CDI process to produce drinking water from seawater or saline water.  相似文献   
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Graphene oxide, as an emerging material for contaminants removal,possesses relatively large specific surface area, and it shows good dispersion in water phase due to the hydrophilicessence resulted from abundant oxygen-containing functional groups on the edge, thus leading to a potential excellent adsorbent. Current studies revealthat, because graphene oxide is negatively-charged in a wide range of pHs, the removal efficiency of heavy metals and cationic dyes by graphene oxide is significantly higher than by traditional adsorbents, like activated carbon. However, its applications are still limited due to its structural defects. For example, its π domain is destructed during fabrication process. Therefore, certain structural modifications need to be conducted on the purpose of improving its performance, achieving a better result in water purification. This paper presented the preparation and structure of graphene oxide, and reviewed the adsorption behaviors, adsorption mechanisms, adsorption models and influence factors of heavy metals and organic pollutants on graphene oxide and its composites, respectively. In view of unresolved issues, further research should focus on comprehensive adsorption mechanisms, more facile and effectivemethods for structural modifications and the treatment of graphene oxide after adsorption process.  相似文献   
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在硅电子材料即将发展到顶峰时,碳纳米管及石墨烯以其优良的导体和半导体性质将成为延续硅材料的主流微电子材料.详述了碳纳米管和石墨烯的结构与电学性质,从而说明其作为微电子材料的优势,列举了在微电子器件构建中已经取得的成果及构建器件的方法,并简述了相应碳纳米管和石墨烯的制备方法  相似文献   
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