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首页> 外文期刊>Nanomaterials >Oil Palm Waste-Based Precursors as a Renewable and Economical Carbon Sources for the Preparation of Reduced Graphene Oxide from Graphene Oxide
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Oil Palm Waste-Based Precursors as a Renewable and Economical Carbon Sources for the Preparation of Reduced Graphene Oxide from Graphene Oxide

机译:基于油棕榈废物的前体作为可再生和经济的碳源,用于制备从石墨烯氧化物的氧化石墨氧化物

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摘要

Herein, a new approach was proposed to produce reduced graphene oxide (rGO) from graphene oxide (GO) using various oil palm wastes: oil palm leaves (OPL), palm kernel shells (PKS) and empty fruit bunches (EFB). The effect of heating temperature on the formation of graphitic carbon and the yield was examined prior to the GO and rGO synthesis. Carbonization of the starting materials was conducted in a furnace under nitrogen gas for 3 h at temperatures ranging from 400 to 900 °C and a constant heating rate of 10 °C/min. The GO was further synthesized from the as-carbonized materials using the ‘improved synthesis of graphene oxide’ method. Subsequently, the GO was reduced by low-temperature annealing reduction at 300 °C in a furnace under nitrogen gas for 1 h. The I G /I D ratio calculated from the Raman study increases with the increasing of the degree of the graphitization in the order of rGO from oil palm leaves (rGOOPL) < rGO palm kernel shells (rGOPKS) < rGO commercial graphite (rGOCG) < rGO empty fruit bunches (rGOEFB) with the I G /I D values of 1.06, 1.14, 1.16 and 1.20, respectively. The surface area and pore volume analyses of the as-prepared materials were performed using the Brunauer Emmett Teller-Nitrogen (BET-N 2 ) adsorption-desorption isotherms method. The lower BET surface area of 8 and 15 m 2 g ?1 observed for rGOCG and rGOOPL, respectively could be due to partial restacking of GO layers and locally-blocked pores. Relatively, this lower BET surface area is inconsequential when compared to rGOPKS and rGOEFB, which have a surface area of 114 and 117 m 2 g ?1 , respectively.
机译:在此,提出了一种新方法,用于使用各种油棕榈废物生产石墨烯氧化物(GO)的氧化石墨烯(RGO):油棕榈叶(OPL),棕榈籽壳(PKS)和空果束(EFB)。在GO和RGO合成之前,检查了加热温度对图形碳形成的影响及产量。起始原料的碳化在炉中在氮气下在400至900℃的温度下进行3小时,恒定的加热速率为10℃/ min。使用“改进的石墨烯氧化物”方法从AS-碳化材料中进一步合成。随后,通过在氮气下的炉中在300℃下在氮气下的炉中的低温退火减少1小时,降低了去。根据拉曼研究计算的IG / ID比率随着来自油棕叶(RGo)

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