Influential properties of activated carbon on dispersion of nickel phosphides and catalytic performance in hydrodeoxygenation of palm oil

[Display omitted] •Charcoal is produced from Lead tree wood in Iwasaki kiln (IW) and tube furnace (TF).•Activated carbon (AC) from both charcoals are used as supports for nickel phosphides.•AC_IW has higher C/O ratio than AC_TF.•Nickel phosphides disperse on external surface and macropores of AC_IW....

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Published inCatalysis today Vol. 367; pp. 153 - 164
Main Authors Ruangudomsakul, Mustika, Osakoo, Nattawut, Keawkumay, Chalermpan, Kongmanklang, Chaiwat, Butburee, Teera, Kiatphuengporn, Sirapassorn, Faungnawakij, Kajornsak, Chanlek, Narong, Wittayakun, Jatuporn, Khemthong, Pongtanawat
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.05.2021
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Summary:[Display omitted] •Charcoal is produced from Lead tree wood in Iwasaki kiln (IW) and tube furnace (TF).•Activated carbon (AC) from both charcoals are used as supports for nickel phosphides.•AC_IW has higher C/O ratio than AC_TF.•Nickel phosphides disperse on external surface and macropores of AC_IW.•NiP/AC_IW gave green diesel yield more than three times higher than NiP/AC_TF. Carbon-oxygen ratios (C/O) in activated carbon (AC) derived from wood are usually dependent upon carbonization conditions. Such a ratio directly correlates with the hydrophobicity and hydrophilicity of AC. In this work, we use two different types of AC, which are prepared by carbonization of Lead tree wood charcoal in a tube furnace (AC_TF) and Iwasaki kiln (AC_IW), as a support for nickel phosphide (NiP) for catalytic hydrodeoxygenation (HDO) of palm oil to produce green diesel. Basically, AC_IW has a higher C/O ratio than that of AC_TF. This makes the surface of AC_IW more hydrophobic. Both AC_IW and AC_TF have a great influence on the dispersion and the acid property of Ni2P. The Ni2P nanoparticles disperse mainly outside the micropores of AC_IW, whereas those on AC_TF mainly appear inside the micropores. Interestingly, NiP/AC_IW outperforms NiP/AC_TF in HDO, with an impressive green diesel yield of 98.3 %, more than three times higher than that from NiP/AC_TF. The superior HDO performance of NiP/AC_IW could be attributed to the eased accessibility of reactants to the active sites. This obtained catalyst could have high potential application in an industrial scale due to the facile preparation method, low-cost materials, large-scale production, super catalytic activity.
ISSN:0920-5861
1873-4308
DOI:10.1016/j.cattod.2020.04.068