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Bifunctional nano-catalyst produced from palm kernel shell via hydrothermal-assisted carbonization for biodiesel production from waste cooking oil

机译:通过水热辅助碳化从棕榈籽壳生产的双官能纳米催化剂,用于废物烹饪油的生物柴油生产

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摘要

A highly mesoporous activated carbon derived from palm kernel shell was successfully prepared by hydrothermal-assisted carbonization (HTC) by improving the degradation of lignocellulosic composition and increase the porous texture of carbon structure. Additional NaOH treatment increased the surface area of the catalyst which enhanced the loading of the active site. Further impregnation of HTC based activated carbon with K2CO3 and CuO via wet impregnation provided bifunctional characteristics suitable for simultaneous esterification and transesterification processes. The physicochemical properties of the prepared catalysts were conducted through the state-of-the-art techniques including N-2 adsorption-desorption analysis, functional group determination, surface morphology study, electron dispersive x-ray mapping, elemental distribution analysis, amount of basicity and acidity strength and thermal degradation behavior analysis. The investigation found that the chemical treatment with NaOH significantly increased the surface area from 3.57 to 3368.60 m(2)/g and impregnation with K2CO3 and CuO offered higher amount of basicity of 5.73 mmol/g and acidity of 1.48 mmol/g, respectively. These properties enhanced the simultaneous esterification-transesterification of waste cooking oil to biodiesel. The catalytic study produced 95.36 +/- 1.4% of biodiesel over 4 wt% of PKSHAC-K2CO3(20%)CuO(5%) catalyst, 12:1 of methanol to oil molar ratio, reaction temperature of 70 degrees C for duration of 2 h. Meanwhile, the catalyst can be employed for five subsequent reaction cycles with FAME yield of 82.5 +/- 2.5%. Thus, the synthesized bifunctional nanocatalyst supported on the HTC based activated carbon has been validated as an efficient catalyst for biodiesel production.
机译:通过改善木质纤维素组合物的降解并增加碳结构的多孔纹理,通过水热辅助碳化(HTC)成功制备了源自棕榈仁壳的高度介孔活性炭。额外的NaOH处理增加了催化剂的表面积,其增强了活性位点的负载。通过湿浸渍的基于HTC的活性炭的进一步浸渍HTC活性炭和CuO提供适于同时酯化和酯交换方法的双功能特性。制备催化剂的物理化学特性通过最新技术进行,包括N-2吸附 - 解吸分析,官能团测定,表面形态学研究,电子分散X射线映射,元素分布分析,碱度量和酸度强度和热降解行为分析。调查发现,NaOH的化学处理显着增加了3.57至3368.60μm(2)/ g的表面积,并用K 2 CO 3和CuO浸渍,碱度分别为1.48mmol / g的酸度分别为1.48mmol / g。这些性质增强了废物烹饪油的同时酯化 - 酯交换到生物柴油。催化研究产生95.36 +/- 1.4%的生物柴油超过4wt%的PKShac-k2Co3(20%)CuO(5%)催化剂,12:1甲醇与油摩尔比,反应温度为70℃的持续时间2小时。同时,催化剂可用于五个后续反应循环,其名称产率为82.5 +/- 2.5%。因此,支持在基于HTC的活性炭上的合成双官能纳米催化剂被验证为生物柴油生产的有效催化剂。

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