Home / Publications / Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents

Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents

9
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Kustov L. M. et al. Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents // Mendeleev Communications. 2018. Vol. 29. No. 1. pp. 25-28.
GOST all authors (up to 50) Copy
Kustov L. M., Kalenchuk A. N., Dunaev S. F., Bogdan V. I. Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents // Mendeleev Communications. 2018. Vol. 29. No. 1. pp. 25-28.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.mencom.2019.01.007
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.007
TI - Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents
T2 - Mendeleev Communications
AU - Kustov, Leonid Modestovich
AU - Kalenchuk, Alexander Nikolaevich
AU - Dunaev, Sergey Fedorovich
AU - Bogdan, Viktor Ignat'evich
PY - 2018
DA - 2018/12/28
PB - Mendeleev Communications
SP - 25-28
IS - 1
VL - 29
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2018_Kustov,
author = {Leonid Modestovich Kustov and Alexander Nikolaevich Kalenchuk and Sergey Fedorovich Dunaev and Viktor Ignat'evich Bogdan},
title = {Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents},
journal = {Mendeleev Communications},
year = {2018},
volume = {29},
publisher = {Mendeleev Communications},
month = {Dec},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.007},
number = {1},
pages = {25--28},
doi = {10.1016/j.mencom.2019.01.007}
}
MLA
Cite this
MLA Copy
Kustov, Leonid Modestovich, et al. “Effect of isomerization on the performance of aromatic hydrogen storage systems possessing different condensation extents.” Mendeleev Communications, vol. 29, no. 1, Dec. 2018, pp. 25-28. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.01.007.

Abstract

The influence of structural differences in cis- and trans-conformer molecules of ortho-, meta- and para-isomers of perhydroterphenyl and decalin on the hydrogen release in hydrogen storage systems was estimated for the Pt/C catalyst in a flow regime. The structural differences between the cis- and trans-conformers of perhydroterphenyl did not significantly affect the reactivity of its ortho-, meta- and para-isomers. In the case of decalin, the decrease in the volume of released hydrogen due to the conversion of its cis-isomer into the less active trans-form was clearly demonstrated.

References

2.
Characterising fuel cell technology: Challenges of the commercialisation process
HELLMAN H., VANDENHOED R.
International Journal of Hydrogen Energy, 2007
3.
A system of hydrogen-powered vehicles with liquid organic hydrides
TAUBE M., RIPPIN D., CRESSWELL D., KNECHT W.
International Journal of Hydrogen Energy, 1983
4.
Efficient hydrogen supply through catalytic dehydrogenation of methylcyclohexane over Pt/metal oxide catalysts
Shukla A.A., Gosavi P.V., Pande J.V., Kumar V.P., Chary K.V., Biniwale R.B.
International Journal of Hydrogen Energy, 2010
7.
Hydrogen storage by decalin dehydrogenation/naphthalene hydrogenation pair over platinum catalysts supported on activated carbon
Sebastián D., Bordejé E.G., Calvillo L., Lázaro M.J., Moliner R.
International Journal of Hydrogen Energy, 2008
10.
Kinetic modeling of pure hydrogen production from decalin
WANG B., GOODMAN D., FROMENT G.
Journal of Catalysis, 2008
11.
Kinetics of decalin dehydrogenation on Pt/C catalyst
Kalenchuk A.N., Smetneva D.N., Bogdan V.I., Kustov L.M.
Russian Chemical Bulletin, 2015
12.
Efficient hydrogen production using cyclohexane and decalin by pulse-spray mode reactor with Pt catalysts
Kariya N., Fukuoka A., Utagawa T., Sakuramoto M., Goto Y., Ichikawa M.
Applied Catalysis A: General, 2003
13.
Kustov L.M., Tarasov A.L., Sung J., Godovsky D.Y.
Mendeleev Communications, 2014
14.
A new hydrogen storage system based on efficient reversible catalytic hydrogenation/dehydrogenation of terphenyl
SUNG J., CHOO K., KIM T., TARASOV A., TKACHENKO O., KUSTOV L.
International Journal of Hydrogen Energy, 2008
15.
Pt–Sn/γ-Al2O3 and Pt–Sn–Na/γ-Al2O3 catalysts for hydrogen production by dehydrogenation of Jet A-1 fuel: Characterisation and preliminary activity tests
Resini C., Lucarelli C., Taillades-Jacquin M., Liew K., Gabellini I., Albonetti S., Wails D., Rozière J., Vaccari A., Jones D.
International Journal of Hydrogen Energy, 2011
17.
A comparative study of catalytic dehydrogenation of perhydro-N-ethylcarbazole over noble metal catalysts
Yang M., Dong Y., Fei S., Ke H., Cheng H.
International Journal of Hydrogen Energy, 2014
19.
Model Catalytic Studies of Liquid Organic Hydrogen Carriers: Dehydrogenation and Decomposition Mechanisms of Dodecahydro-N-ethylcarbazole on Pt(111)
Amende M., Gleichweit C., Werner K., Schernich S., Zhao W., Lorenz M.P., Höfert O., Papp C., Koch M., Wasserscheid P., Laurin M., Steinrück H., Libuda J.
ACS Catalysis, 2014
20.
G. P. Pez, A.R. Scott, A.C. Cooper and H. Cheng, US Patent 7101530 B2, 2005.
21.
G. P. Pez, A.R. Scott, A.C. Cooper and H. Cheng, US Patent 20040223907 A1, 2003.
23.
Zur konfigurationsanalyse der tercyclohexyle
Brügel W., Kuss E., Pollmann P., Stegemeyer H.
Journal of Molecular Structure, 1967
24.
Effect of surface hydrophilization on Pt/Sibunit catalytic activity in bicyclohexyl dehydrogenation in hydrogen storage application
25.
10.1016/j.mencom.2019.01.007_bib0125
Abramenkov
Praktikum po Fizicheskoi Khimii (Practical Works in Physical Chemistry), 2012
26.
10.1016/j.mencom.2019.01.007_bib0130
Eliel
Basic Organic Stereochemistry, 2001
29.
Standard molar enthalpies of formation and of sublimation of the terphenyl isomers
Ribeiro da Silva M.A., Santos L.M., Lima L.M.
Journal of Chemical Thermodynamics, 2008