Biologically bound nickel as a sustainable catalyst for the selective hydrogenation of cinnamaldehyde

被引:23
作者
Johar, Parul [1 ]
McElroy, C. Robert [1 ]
Rylott, Elizabeth L. [2 ]
Matharu, Avtar S. [1 ]
Clark, James H. [1 ]
机构
[1] Univ York, Dept Chem, Green Chem Ctr Excellence, York YO10 5DD, N Yorkshire, England
[2] Univ York, Dept Biol, Ctr Novel Agr Prod, Wentworth Way, York YO10 5DD, N Yorkshire, England
来源
APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY | 2022年 / 306卷
关键词
Metal bio-refinery; Bio-catalysis; Microwave assisted pyrolysis; Selective hydrogenation; Sustainable chemical production; BIMETALLIC NI; NANOPARTICLES; HYDROCINNAMALDEHYDE; PERFORMANCE; BIOMASS; CU;
D O I
10.1016/j.apcatb.2022.121105
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
With mounting concerns over critical element sustainability in future bio-refineries, the conversion of phytoextracted nickel (from contaminated lands) into an inexpensive and clean catalyst could help to reduce demand for virgin precious metals. Utilizing this green approach, noble metal catalysts, which require substantial downstream processing, could potentially be replaced by a naturally developed non-noble metal catalyst. We report a biologically bound non-noble metal catalyst (Ni-phytocat, 0.1-2.5 wt% Ni) prepared using simple, onestep, energy efficient, microwave-assisted pyrolysis (250 & DEG;C, 200 W, < 10 min). The biologically bound Ni in the plant matrix directs the catalytic hydrogenation of cinnamaldehyde selectively and efficiently (up to 97% conversion and 96% selectivity at T & LE;120 & DEG;C), Our findings indicate that the presence of bio-carbon matrix around the phyto-extracted Ni enables an efficient suppression of the over-hydrogenation reaction pathway and prevents further dissociation of adsorbed hydrocinnamaldehyde molecules. The simplicity, long-term stability and ease of handling make this catalyst an economically and environmentally attractive alternative to Raney nickel and precious metal-based catalysts.
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页数:9
相关论文
共 51 条
[1]  
[Anonymous], 2022, Mineral Commodity Summaries, P202, DOI [DOI 10.3133/MCS2020, 10.3133/mcs2020, 10.3133/mcs2022]
[2]   Influence of Mg and Ce addition to ruthenium based catalysts used in the selective hydrogenation of α,β-unsaturated aldehydes [J].
Bachiller-Baeza, B ;
Rodríguez-Ramos, I ;
Guerrero-Ruiz, A .
APPLIED CATALYSIS A-GENERAL, 2001, 205 (1-2) :227-237
[3]   Hydrogenation of Furfural to Furfuryl Alcohol over Ru Particles Supported on Mildly Oxidized Biochar [J].
Bardestani, Raoof ;
Biriaei, Rouholamin ;
Kaliaguine, Serge .
CATALYSTS, 2020, 10 (08)
[4]  
BRINDLEY GW, 1979, AM MINERAL, V64, P615
[5]  
Castelijns A.M.C.F., 1998, PROCESS PREPARATION
[6]   Preparation, Characterization, and Testing of a Carbon-Supported Catalyst Obtained by Slow Pyrolysis of Nickel Salt Impregnated Vegetal Material [J].
Ceatra, Laurentiu ;
Parvulescu, Oana Cristina ;
Rodriguez Ramos, Inmaculada ;
Dobre, Tanase .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2016, 55 (06) :1491-1502
[7]   A pyridinium cation-π interaction sensor for the fluorescent detection of alkyl halides [J].
Chen, Wenbo ;
Elfeky, Souad A. ;
Nonne, Yse ;
Male, Louise ;
Ahmed, Kabir ;
Amiable, Claire ;
Axe, Philip ;
Yamada, Shinji ;
James, Tony D. ;
Bull, Steven D. ;
Fossey, John S. .
CHEMICAL COMMUNICATIONS, 2011, 47 (01) :253-255
[8]   Bio-coal: A renewable and massively producible fuel from lignocellulosic biomass [J].
Cheng, Bin-Hai ;
Huang, Bao-Cheng ;
Zhang, Rui ;
Chen, Ya-Li ;
Jiang, Shun-Feng ;
Lu, Yan ;
Zhang, Xue-Song ;
Jiang, Hong ;
Yu, Han-Qing .
SCIENCE ADVANCES, 2020, 6 (01)
[9]   Industrial biomanufacturing: The future of chemical production [J].
Clomburg, James M. ;
Crumbley, Anna M. ;
Gonzalez, Ramon .
SCIENCE, 2017, 355 (6320)
[10]   Bimetallic Nickel-Iridium and Nickel-Osmium Alloy Nanoparticles and Their Catalytic Performance in Hydrogenation Reactions [J].
Egeberg, Alexander ;
Dietrich, Christine ;
Kind, Christian ;
Popescu, Radian ;
Gerthsen, Dagmar ;
Behrens, Silke ;
Feldmann, Claus .
CHEMCATCHEM, 2017, 9 (18) :3534-3543