Co-hydrothermal carbonization of polystyrene waste and maize stover combined with KOH activation to develop nanoporous carbon as catalyst support for catalytic hydrotreating of palm oil

IF 6.4 3区 环境科学与生态学 Q2 ENERGY & FUELS Carbon Resources Conversion Pub Date : 2024-02-16 DOI:10.1016/j.crcon.2024.100231
Napat Kaewtrakulchai , Sirayu Chanpee , Supachai Jadsadajerm , Sutthipoj Wongrerkdee , Kanit Manatura , Apiluck Eiad-Ua
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Abstract

Plastic waste is massively generated daily from households, mainly as packaging material, causing serious surrounding ecological problems. The development of plastic waste for higher value-added applications instead of landfilling and incineration has received consideration interest in bioenergy and material science research. Herein, a nanoporous carbon support of nickel phosphide catalyst for palm oil hydrotreating was developed from blended polystyrene waste and maize stover via the Co-hydrothermal carbonization (HTC) coupled with the KOH activation process. The Co-HTC parameters, such as temperature, reaction time, and PS percentage, were studied on the properties of co-hydrochar feedstocks for further activation using the Box behnken design. From the comprehensive characterization results, response surface methodology (RSM) results showed that the rising polystyrene proportion significantly exhibited the higher production yield and fixed carbon of co-hydrochar products, an essential characteristic for porous carbon manufacturing. After activation step, the final nanoporous carbon derived from the co-hydrochar (PMPC) exhibited the highest specific surface area of 1033.58 m2/g with total pore volume of 0.45 cm3/g. Moreover, the PCMC-supported nickel phosphide catalysts were successfully synthesized and tested for the catalytic hydrotreating of palm oil as alternative catalyst. The NiP-PMPC catalyst represents an impressive liquid hydrocarbon yield of 74.68 % with a high green diesel selectivity of 85.92 % at 100 % palm oil conversion. The findings of this study might help develop and utilize blended plastic waste and agricultural waste as an alternate catalytic support for various processes in biofuel and biochemical synthesis.

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聚苯乙烯废料和玉米秸秆的共水热碳化与 KOH 活化相结合,开发出纳米多孔碳作为催化加氢处理棕榈油的催化剂载体
家庭每天都会产生大量塑料垃圾,主要作为包装材料,造成了严重的周边生态问题。开发塑料垃圾的高附加值应用,而不是填埋和焚烧,受到了生物能源和材料科学研究的关注。在此,通过共热碳化(HTC)和 KOH 活化工艺,利用混合聚苯乙烯废料和玉米秸秆开发了一种用于棕榈油加氢处理的磷化镍催化剂纳米多孔碳载体。采用盒式贝芬肯(Box behnken)设计,研究了共氢热碳化(Co-HTC)参数(如温度、反应时间和 PS 百分比)对进一步活化的共氢碳化原料特性的影响。从综合表征结果来看,响应面方法学(RSM)结果表明,聚苯乙烯比例越高,共氢化炭产品的产量和固定碳越高,而这正是多孔炭制造的基本特征。经过活化步骤后,最终从共水合碳中提取的纳米多孔碳(PMPC)显示出最高的比表面积(1033.58 m2/g),总孔体积为 0.45 cm3/g。此外,还成功合成并测试了 PCMC 支持的磷化镍催化剂,并将其作为替代催化剂用于棕榈油的催化加氢处理。当棕榈油转化率达到 100%时,NiP-PMPC 催化剂的液态烃收率高达 74.68%,绿色柴油选择性高达 85.92%。这项研究的结果可能有助于开发和利用混合塑料废料和农业废料,作为生物燃料和生化合成中各种工艺的替代催化剂。
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来源期刊
Carbon Resources Conversion
Carbon Resources Conversion Materials Science-Materials Science (miscellaneous)
CiteScore
9.90
自引率
11.70%
发文量
36
审稿时长
10 weeks
期刊介绍: Carbon Resources Conversion (CRC) publishes fundamental studies and industrial developments regarding relevant technologies aiming for the clean, efficient, value-added, and low-carbon utilization of carbon-containing resources as fuel for energy and as feedstock for materials or chemicals from, for example, fossil fuels, biomass, syngas, CO2, hydrocarbons, and organic wastes via physical, thermal, chemical, biological, and other technical methods. CRC also publishes scientific and engineering studies on resource characterization and pretreatment, carbon material innovation and production, clean technologies related to carbon resource conversion and utilization, and various process-supporting technologies, including on-line or off-line measurement and monitoring, modeling, simulations focused on safe and efficient process operation and control, and process and equipment optimization.
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Outside Front Cover Outside Back Cover Developments and challenges on enhancement of photocatalytic CO2 reduction through photocatalysis Outside Front Cover Outside Back Cover
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