High-Purity Hydrogen Generation via Dehydrogenation of Organic Carriers: A Review on the Catalytic Process

被引:210
作者
Gianotti, Elia [1 ]
Taillades-Jacquin, Melanie [1 ]
Roziere, Jacques [1 ]
Jones, Deborah J. [1 ]
机构
[1] Univ Montpellier, Inst Charles Gerhardt Montpellier, UMR CNRS 5253, Agregats Interfaces & Mat Energie, Pl Eugene Bataillon, F-34095 Montpellier 5, France
来源
ACS CATALYSIS | 2018年 / 8卷 / 05期
关键词
liquid organic hydrogen carriers; fuels; hydrogen production; dehydrogenation catalyst; fuel cell; KEROSENE JET A-1; MULTIPHASE REACTION CONDITIONS; FORMIC-ACID DEHYDROGENATION; PERHYDRO-N-ETHYLCARBAZOLE; FIXED-BED REACTOR; CO-FREE HYDROGEN; SUPPORTED PT-SN; PROPANE DEHYDROGENATION; ETHANOL DEHYDROGENATION; DECALIN DEHYDROGENATION;
D O I
10.1021/acscatal.7b04278
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
High-purity hydrogen delivery for stationary and mobile applications using fuel cells is a subject of rapidly growing interest. As a consequence, the development of efficient storage technologies and processes for hydrogen supply is of primary importance. Promising hydrogen storage techniques rely on the reversibility and high selectivity of liquid organic hydrogen carriers (LOHCs), for example, methylcyclohexane, decalin, dibenzyltoluene, or dodecahydrocabazole. LOCHS have high gravimetric and volumetric hydrogen density, and they involve low risk and capital investment because they are largely compatible with the current transport infrastructure used for fossil fuels. A further advantage comes from the high purity (close to 100%) of the hydrogen generated by dehydrogenation, suitable to directly feed fuel cells without the need for bulky purification modules. Partial dehydrogenation (PDH) of liquid fuels has recently emerged as a transition technology for hydrogen delivery purposes. The principle is to extract from fossil fuels a small fraction of the available hydrogen, which can be used for fuel cell applications, while the dehydrogenated hydrocarbon mixture maintains suitable properties for its use as fuel. With this technology, the large energy demand of dehydrogenation processes can be satisfied by implementing a heat exchanger between the engine and the dehydrogenation reactor, overcoming one of the main constraints associated with the use of organic liquids as hydrogen carriers. This method qualifies itself as a transition technology toward more electrified transportations, in which the main propulsion is still obtained by fuel combustion, although the electrical utilities or auxiliary propulsion are powered by fuel cells. This paper provides a review of the effort that has been directed toward the utilization of organic liquids as hydrogen carriers, with particular focus on the design of the catalytic dehydrogenation process and on the recent approach of fuel partial dehydrogenation.
引用
收藏
页码:4660 / 4680
页数:41
相关论文
共 150 条
[1]   Novel thiotolerant catalysts for the on-board partial dehydrogenation of jet fuels [J].
Albonetti, S. ;
Boanini, E. ;
Jimenez-Morales, I. ;
Lucarelli, C. ;
Mella, M. ;
Molinari, C. ;
Vaccari, A. .
RSC ADVANCES, 2016, 6 (54) :48962-48972
[2]   Hydrogen Storage in Liquid Organic Hydride: Producing Hydrogen Catalytically from Methylcyclohexane [J].
Alhumaidan, Faisal ;
Cresswell, David ;
Garforth, Arthur .
ENERGY & FUELS, 2011, 25 (10) :4217-4234
[3]   Regeneration of LOHC dehydrogenation catalysts: In-situ IR spectroscopy on single crystals, model catalysts, and real catalysts from UHV to near ambient pressure [J].
Amende, Max ;
Kaftan, Andre ;
Bachmann, Philipp ;
Brehmer, Richard ;
Preuster, Patrick ;
Koch, Marcus ;
Wasserscheid, Peter ;
Libuda, Joerg .
APPLIED SURFACE SCIENCE, 2016, 360 :671-683
[4]  
[Anonymous], 2014, MULT WORK PLAN 2014
[5]   Experimental Study of Solubility of Water in Liquid Organic Hydrogen Carriers [J].
Aslam, Rabya ;
Mueller, Karsten ;
Ant, Wolfgang .
JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2015, 60 (07) :1997-2002
[6]   Location and structure of coke generated over Pt-Sn/Al2O3 in propane dehydrogenation [J].
Bao Khanh Vu ;
Song, Myoung Bok ;
Ahn, In Young ;
Suh, Young-Woong ;
Suh, Dong Jin ;
Kim, Jae Sung ;
Shin, Eun Woo .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2011, 17 (01) :71-76
[7]   Dehydrogenation and oxydehydrogenation of paraffins to olefins [J].
Bhasin, MM ;
McCain, JH ;
Vora, BV ;
Imai, T ;
Pujadó, PR .
APPLIED CATALYSIS A-GENERAL, 2001, 221 (1-2) :397-419
[8]   Chemical hydrides: A solution to high capacity hydrogen storage and supply [J].
Biniwale, Rajesh B. ;
Rayalu, S. ;
Devotta, S. ;
Ichikawa, M. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (01) :360-365
[9]   Characterization and catalytic behavior in the n-butane dehydrogenation of trimetallic InPtSn/MgAl2O4 catalysts [J].
Bocanegra, Sonia A. ;
Castro, Alberto A. ;
Scelza, Osvaldo A. ;
de Miguel, Sergio R. .
APPLIED CATALYSIS A-GENERAL, 2007, 333 (01) :49-56
[10]   Dehydrogenation of methylcyclohexane to toluene over partially reduced silica-supported Pt-Mo catalysts [J].
Boufaden, N. ;
Akkari, R. ;
Pawelec, B. ;
Fierro, J. L. G. ;
Zina, M. Said ;
Ghorbel, A. .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2016, 420 :96-106