S. D. Sumbogo-murti, H. Yang, K. Choi, Y. Korai, and I. Mochida, Influences of nitrogen species on the hydrodesulfurization reactivity of a gas oil over sulfide catalysts of variable activity, Applied Catalysis A: General, vol.252, pp.331-346, 2003.

R. Prins, Catalytic hydrodenitrogenation, vol.46, pp.399-464, 2001.
DOI : 10.1016/s0360-0564(02)46025-7

M. Sau, K. Basak, U. Manna, M. Santra, and R. P. Verma, Effects of organic nitrogen compounds on hydrotreating and hydrocracking reactions, Catalysis Today, vol.109, pp.112-119, 2005.
DOI : 10.1016/j.cattod.2005.08.007

E. Furimsky, Deactivation of hydroprocessing catalysts, Catalysis Today, vol.52, pp.381-495, 1999.
DOI : 10.1016/s0920-5861(99)00096-6

C. Peng, R. Guo, and X. Fang, Improving Ultra-Deep Desulfurization Efficiency by Catalyst Stacking Technology, Catalysis Letters, vol.146, pp.701-709, 2016.
DOI : 10.1007/s10562-015-1675-4

T. C. Ho and L. Qiao, Competitive adsorption of nitrogen species in HDS: Kinetic characterization of hydrogenation and hydrogenolysis sites, Journal of Catalysis, vol.269, pp.291-301, 2010.

C. N. Satterfield and J. F. Cocchetto, Reaction network and kinetics of the vapor-phase catalytic hydrodenitrogenation of quinoline, Ind. Eng. Chem. Proc. Des. Dev, vol.20, pp.53-62, 1981.

M. Jian and R. Prins, Mechanism of the Hydrodenitrogenation of Quinoline over NiMo(P)/Al2O3Catalysts, Journal of Catalysis, vol.179, pp.18-27, 1998.

M. Nguyen, M. Tayakout-fayolle, F. Chainet, G. D. Pirngruber, and C. Geantet, Use of kinetic modeling for investigating support acidity effects of NiMo sulfide catalysts on quinoline hydrodenitrogenation, Applied Catalysis A: General, vol.530, pp.132-144, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01488177

M. Nguyen, M. Tayakout-fayolle, G. D. Pirngruber, F. Chainet, and C. Geantet, Kinetic Modeling of
URL : https://hal.archives-ouvertes.fr/hal-01488177

, Quinoline Hydrodenitrogenation over a NiMo(P)/Al 2 O 3 Catalyst in a Batch Reactor, Ind. Eng. Chem. Res, vol.54, pp.9278-9288, 2015.

V. Rabarihoela-rakotovao, F. Diehl, and S. Brunet, Deep HDS of Diesel Fuel: Inhibiting Effect of Nitrogen Compounds on the Transformation of the Refractory 4,6-Dimethyldibenzothiophene Over a NiMoP/Al 2 O 3 Catalyst, Catalysis Letters, vol.129, pp.50-60, 2009.

M. Nagai, T. Masunaga, and N. Hanaoka, Hydrodenitrogenation of carbazole on a molybdenum/alumina catalyst. Effects of sulfiding and sulfur compounds, Energy Fuels, vol.2, pp.645-651, 1988.

K. Lissitsyna, S. Huertas, L. C. Quintero, and L. M. Polo, Novel simple method for quantitation of nitrogen compounds in middle distillates using solid phase extraction and comprehensive two-dimensional gas chromatography, Fuel, vol.104, pp.752-757, 2013.

C. Mühlen and . Von,

E. C. Oliveira and . De,

P. D. Morrison, C. A. Zini, E. B. Caramão, and P. J. Marriott, Qualitative and quantitative study of nitrogen-containing compounds in heavy gas oil using comprehensive two-dimensional gas chromatography with nitrogen phosphorus detection, Journal of separation science, vol.30, pp.3223-3232, 2007.

K. Qian, R. P. Rodgers, C. L. Hendrickson, M. R. Emmett, and A. G. Marshall, Reading Chemical Fine Print: Resolution and Identification of 3000 Nitrogen-Containing Aromatic Compounds from a Single Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrum of Heavy Petroleum Crude Oil, Energy Fuels, vol.15, pp.492-498, 2001.

A. G. Marshall, R. P. Rodgers, and . Petroleomics, The next grand challenge for chemical analysis, Accounts of Chemical Research, vol.37, pp.53-59, 2004.
DOI : 10.1002/chin.200415280

Y. Cho, A. Ahmed, A. Islam, and S. Kim, Developments in FT-ICR MS instrumentation, ionization techniques, and data interpretation methods for petroleomics, Mass spectrometry reviews, vol.34, pp.248-263, 2015.
DOI : 10.1002/mas.21438

X. Chen, Y. Liu, S. Li, X. Feng, H. Shan et al., Structure and Composition Changes of Nitrogen Compounds during the Catalytic Cracking Process and Their Deactivating Effect on Catalysts, Energy Fuels, vol.31, pp.3659-3668, 2017.

Q. Shi, S. Zhao, Z. Xu, K. H. Chung, Y. Zhang et al., Distribution of Acids and Neutral Nitrogen Compounds in a Chinese Crude Oil and Its Fractions

, Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry. Energy Fuels, vol.24, pp.4005-4011, 2010.

C. Xiaobo, L. Yibin, W. Jin, S. Honghong, Y. Chaohe et al., Characterization of nitrogen compounds in coker gas oil by electrospray ionization Fourier transform ion cyclotron resonance mass spectrometry and Fourier transform infrared spectroscopy, Applied petrochemical research, vol.4, pp.417-422, 2014.

M. Hu, C. Guo, L. Zhang, S. Zhao, K. H. Chung et al., Petroleum heteroatom compounds in various commercial delayed coking liquids: Characterized by FT-ICR MS and GC techniques, Sci. China Chem, vol.60, pp.284-292, 2017.
DOI : 10.1007/s11426-016-0168-1

Q. Shi, C. Xu, S. Zhao, K. H. Chung, Y. Zhang et al., Characterization of Basic Nitrogen Species in Coker Gas Oils by Positive-Ion Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry, Energy Fuels, vol.24, pp.563-569, 2010.

X. Zhu, Q. Shi, Y. Zhang, N. Pan, C. Xu et al., Characterization of Nitrogen Compounds in Coker Heavy Gas Oil and Its Subfractions by Liquid Chromatographic Separation Followed by Fourier Transform Ion Cyclotron Resonance Mass Spectrometry, Energy Fuels, vol.25, pp.281-287, 2011.

C. M. Celis-cornejo, D. J. Pérez-martínez, J. A. Orrego-ruiz, and V. G. Baldovino-medrano, Identification of Refractory Weakly Basic Nitrogen Compounds in a Deeply Hydrotreated Vacuum Gas Oil and Assessment of the Effect of Some Representative Species over the Performance of a Ni-MoS 2 /YZeolite-Alumina Catalyst in Phenanthrene Hydrocracking, Energy Fuels, vol.32, pp.8715-8726, 2018.

M. Liu, L. Zhang, S. Zhao, and D. Zhao, Transformation of Nitrogen Compounds through Hydrotreatment of Saudi Arabia Atmospheric Residue and Supercritical Fluid Extraction Subfractions, Energy Fuels, vol.30, pp.740-747, 2016.

D. Liu, Y. Fu, W. Deng, Q. Shi, K. Ma et al., FT-ICR MS Analysis of NitrogenContaining Compounds in the Products of Liaohe Atmospheric Residue Hydrocracking, Energy Fuels, vol.26, pp.624-628, 2011.

X. Chen, B. Shen, J. Sun, C. Wang, H. Shan et al., Characterization and Comparison of Nitrogen Compounds in Hydrotreated and Untreated Shale Oil by Electrospray Ionization (ESI) Fourier Transform Ion Cyclotron Resonance Mass Spectrometry (FT-ICR MS), Energy Fuels, vol.26, pp.1707-1714, 2012.

J. Fu, G. C. Klein, D. F. Smith, S. Kim, R. P. Rodgers et al.,

, Comprehensive Compositional Analysis of Hydrotreated and Untreated Nitrogen-Concentrated Fractions from Syncrude Oil by Electron Ionization, Field Desorption Ionization, and Electrospray Ionization Ultrahigh-Resolution FT-ICR Mass Spectrometry, Energy Fuels, vol.20, pp.1235-1241, 2006.

G. C. Klein, R. P. Rodgers, and A. G. Marshall, Identification of hydrotreatment-resistant heteroatomic species in a crude oil distillation cut by electrospray ionization FT-ICR mass spectrometry, Fuel, vol.85, pp.2071-2080, 2006.

C. A. Hughey, C. L. Hendrickson, R. P. Rodgers, and A. G. Marshall, Elemental Composition Analysis of Processed and Unprocessed Diesel Fuel by Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry, Energy Fuels, vol.15, pp.1186-1193, 2001.
DOI : 10.1021/ef010028b

T. Kekäläinen, J. M. Pakarinen, K. Wickström, and P. Vainiotalo, Compositional Study of Polar Species in Untreated and Hydrotreated Gas Oil Samples by Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry (ESI FTICR?MS), Energy Fuels, vol.23, pp.6055-6061, 2009.

T. Zhang, L. Zhang, Y. Zhou, Q. Wei, K. H. Chung et al., Transformation of Nitrogen Compounds in Deasphalted Oil Hydrotreating: Characterized by Electrospray Ionization Fourier Transform-Ion Cyclotron Resonance Mass Spectrometry, Energy Fuels, vol.27, pp.2952-2959, 2013.

N. E. Oro and C. A. Lucy, Analysis of the Nitrogen Content of Distillate Cut Gas Oils and Treated Heavy Gas Oils Using Normal Phase HPLC, Fraction Collection and Petroleomic FT-ICR MS Data, Energy Fuels, vol.27, pp.35-45, 2012.

M. Nguyen, G. D. Pirngruber, F. Chainet, M. Tayakout-fayolle, and C. Geantet, Indole Hydrodenitrogenation over Alumina and Silica-Alumina-Supported Sulfide Catalysts -Comparison with
DOI : 10.1021/acs.iecr.7b02993

URL : https://hal.archives-ouvertes.fr/hal-01625635

, Quinoline. Ind. Eng. Chem. Res, vol.56, pp.11088-11099, 2017.

M. T. Nguyen, Support acidity effects of sulfide catalysts in hydrodenitrogenation: From model molecules to gas oil conversions, 2016.

M. Nguyen, G. D. Pirngruber, F. Albrieux, F. Chainet, M. Tayakout-fayolle et al., How Does an Acidic Support Affect the Hydrotreatment of a Gas Oil with High Nitrogen Content ? Energy Fuels, vol.33, pp.1467-1472, 2019.

Q. Wei, S. Wen, X. Tao, T. Zhang, Y. Zhou et al., Hydrodenitrogenation of basic and non-basic nitrogen-containing compounds in coker gas oil, Fuel Processing Technology, vol.129, pp.76-84, 2015.
DOI : 10.1016/j.fuproc.2014.08.001

D. Letourneur, R. Bacaud, M. Vrinat, D. Schweich, and I. Pitault, Hydrodesulfurization Catalyst Evaluation in an Upflow Three-Phase Microreactor, Ind. Eng. Chem. Res, vol.37, pp.2662-2667, 1998.
DOI : 10.1021/ie970688x

A. G. Marshall, Milestones in fourier transform ion cyclotron resonance mass spectrometry technique development, International Journal of Mass Spectrometry, pp.331-356, 0200.
DOI : 10.1016/s1387-3806(00)00324-9

S. F. Wong, C. K. Meng, and J. B. Fenn, Multiple charging in electrospray ionization of poly(ethylene glycols), J. Phys. Chem, vol.92, pp.546-550, 1988.

A. G. Marshall, Fourier transform ion cyclotron resonance mass spectrometry, Accounts of Chemical Research, vol.18, pp.316-322, 1985.
URL : https://hal.archives-ouvertes.fr/hal-01917154

A. G. Marshall, C. L. Hendrickson, and G. S. Jackson, Fourier transform ion cyclotron resonance mass spectrometry: A primer, Mass spectrometry reviews, vol.17, pp.1-35, 1998.
DOI : 10.1002/(sici)1098-2787(1998)17:1<1::aid-mas1>3.0.co;2-k

E. Kendrick, Mass Scale Based on CH2 = 14.0000 for High Resolution Mass Spectrometry of Organic Compounds, Anal. Chem, vol.35, pp.2146-2154, 1963.
DOI : 10.1021/ac60206a048

F. Chainet, J. Ponthus, C. Lienemann, M. Courtiade, and O. F. Donard, Combining Fourier Transform-Ion Cyclotron Resonance/Mass Spectrometry Analysis and Kendrick Plots for Silicon Speciation and Molecular Characterization in Petroleum Products at Trace Levels, Anal. Chem, vol.84, pp.3998-4005, 2012.
DOI : 10.1021/ac202931s

URL : https://hal.archives-ouvertes.fr/hal-01590291

J. Stihle, D. Uzio, C. Lorentz, N. Charon, J. Ponthus et al., Detailed characterization of coal-derived liquids from direct coal liquefaction on supported catalysts, Fuel, vol.95, pp.79-87, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00700215

S. Li and N. Liu, The transformation of basic nitrogen compounds in coker gas oil during catalytic cracking. Petroleum Science and Technology, vol.35, pp.1141-1145, 2017.

G. Wang, Y. Liu, X. Wang, C. Xu, and J. Gao, Studies on the Catalytic Cracking Performance of Coker Gas Oil, Energy Fuels, vol.23, pp.1942-1949, 2009.

M. J. Girgis and B. C. Gates, Reactivities, reaction networks, and kinetics in high-pressure catalytic hydroprocessing, Ind. Eng. Chem. Res, vol.30, pp.2021-2058, 1991.
DOI : 10.1021/ie00057a001

S. Kasztelan, T. Des-courières, and M. Breysse, Hydrodenitrogenation of petroleum distillates: Industrial aspects, Catalysis Today, vol.10, pp.433-445, 1991.
DOI : 10.1016/0920-5861(91)80032-5

P. Wiwel, K. Knudsen, P. Zeuthen, and D. Whitehurst, Assessing Compositional Changes of Nitrogen Compounds during Hydrotreating of Typical Diesel Range Gas Oils Using a Novel Preconcentration Technique Coupled with Gas Chromatography and Atomic Emission Detection, Ind. Eng. Chem. Res, vol.39, pp.533-540, 2000.

M. Farenc, B. Paupy, S. Marceau, E. Riches, C. Afonso et al., Effective Ion Mobility Peak Width as a New Isomeric Descriptor for the Untargeted Analysis of Complex Mixtures Using Ion MobilityMass Spectrometry, Journal of The American Society for Mass Spectrometry, vol.28, pp.2476-2482, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02046275

M. Farenc, Y. E. Corilo, P. M. Lalli, E. Riches, R. P. Rodgers et al., Comparison of Atmospheric Pressure Ionization for the Analysis of Heavy Petroleum Fractions with Ion Mobility-Mass Spectrometry, Energy Fuels, vol.30, pp.8896-8903, 2016.
URL : https://hal.archives-ouvertes.fr/hal-02046205

V. Lavopa, Poisoning of thiophene hydrodesulfurization by nitrogen compounds, Journal of Catalysis, vol.110, pp.375-387, 1988.

T. C. Ho, A. R. Katritzky, and S. J. Cato, Effect of nitrogen compounds on cracking catalysts, Ind. Eng. Chem. Res, vol.31, pp.1589-1597, 1992.