A. Sassi, E. Rohart, and G. Belot, Post-traitement des émissions polluantes des moteurs thermiques à combustion interne-Moteurs à allumage par compression, 2019.

A. P. Walker, Controlling Particulate Emissions from Diesel Vehicles, Top. Catal, vol.28, 2004.
DOI : 10.1023/b:toca.0000024346.29600.0e

M. Masoudi and A. G. Sappok, Soot (PM) Sensors, 2019.

G. Fischerauer, M. Förster, and R. Moos, Sensing the soot load in automotive diesel particulate filters by microwave methods, Meas. Sci. Technol, vol.21, 2010.

L. Ntziachristos, P. Fragkiadoulakis, Z. Samaras, K. Janka, and J. Tikkanen, Exhaust Particle Sensor for OBD Application, SAE 2011 World Congress & Exhibition; APR. 12, 2011.
DOI : 10.4271/2011-01-0626

M. M. Maricq and D. Bilby, The impact of voltage and flow on the electrostatic soot sensor and the implications for its use as a diesel particulate filter monitor, J. Aerosol Sci, vol.124, pp.41-53, 2018.

T. Kamimoto, A review of soot sensors considered for on-board diagnostics application, Int. J. Engine Res, 2016.

G. Hagen, C. Feistkorn, S. Wiegartner, A. Heinrich, D. Bruggemann et al., Conductometric soot sensor for automotive exhausts: Initial studies, Sensors, vol.10, pp.1589-1598, 2010.
DOI : 10.3390/s100301589

URL : https://www.mdpi.com/1424-8220/10/3/1589/pdf

B. Grob, J. Schmid, N. P. Ivleva, and R. Niessner, Conductivity for soot sensing: Possibilities and limitations, Anal. Chem, vol.84, pp.3586-3592, 2012.
DOI : 10.1021/ac203152z

O. Brunel, F. Duault, J. Lavy, Y. Creff, and . Youssef, Smart Soot Sensor for Particulate Filter OBD, SAE Int. J. Passeng. Cars Electron. Electr. Syst, vol.6, pp.307-327, 2013.

M. Feulner, G. Hagen, A. Muller, A. Schott, C. Zollner et al., Conductometric Sensor for Soot Mass Flow Detection in Exhausts of Internal Combustion Engines, Sensors, vol.15, pp.28796-28806, 2015.

, Sensors, vol.19, pp.705-716, 2019.

D. B. Kittelson, D. Y. Pui, and K. C. Moon, Electrostatic Collection of Diesel Particles; SAE Technical Paper, 1986.

H. Jung and D. B. Kittelson, Measurement of Electrical Charge on Diesel Particles, Aerosol Sci. Technol, vol.39, pp.1129-1135, 2005.

D. Grondin, A. Westermann, P. Breuil, J. Viricelle, and P. Vernoux, Influence of key parameters on the response of a resistive soot sensor, Sens. Actuators B Chem, vol.236, pp.1036-1043, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01316634

D. Grondin, Développement d'un capteur de suie pour application automobile: Etude des paramètres clés affectant sa réponse, 2017.

A. Malik, H. Abdulhamid, J. Pagels, J. Rissler, M. Lindskog et al., A Potential Soot Mass Determination Method from Resistivity Measurement of Thermophoretically Deposited Soot, Aerosol Sci. Technol, vol.45, pp.284-294, 2011.

G. Hagen, C. Spannbauer, M. Feulner, J. Kita, A. Müller et al., Conductometric Soot Sensors: Internally Caused Thermophoresis as an Important Undesired Side Effect, Sensors, vol.18, 2018.
DOI : 10.3390/s18103531

URL : https://www.mdpi.com/1424-8220/18/10/3531/pdf

T. Ochs, H. Schittenhelm, A. Genssle, and B. Kamp, Particulate Matter Sensor for On Board Diagnostics (OBD) of Diesel Particulate Filters (DPF), SAE Int. J. Fuels Lubr, vol.3, pp.61-69, 2010.

H. Husted, G. Roth, S. Nelson, L. Hocken, G. Fulks et al., Sensing of Particulate Matter for On-Board Diagnosis of Particulate Filters, SAE Int. J. Engines, vol.5, pp.235-247, 2012.

A. Reynaud, M. Leblanc, S. Zinola, P. Breuil, and J. P. Viricelle, Soot Particle Classifications in the Context of a Resistive Sensor Study, Proceedings, vol.2, p.987, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01997899

C. Millet, H. Abassi, and J. Lavy, Projet CICLAMEN 2. Capteur de Particules Pour échappement Moteur, 2013.

R. Moore, L. D. Ziemba, D. Dutcher, A. J. Beyersdorf, K. Chan et al., Mapping the Operation of the Miniature Combustion Aerosol Standard (Mini-CAST) Soot Generator, Aerosol Sci. Technol, vol.48, pp.467-479, 2014.

S. D. Shah, D. R. Cocker, J. W. Miller, and J. M. Norbeck, Emission Rates of Particulate Matter and Elemental and Organic Carbon from In-Use Diesel Engines, Environ. Sci. Technol, vol.38, pp.2544-2550, 2004.

P. H. Mcmurry, X. Wang, K. Park, and K. Ehara, The Relationship between Mass and Mobility for Atmospheric Particles: A New Technique for Measuring Particle Density, Aerosol Sci. Technol, vol.36, pp.227-238, 2002.

B. Y. Liu and D. Y. Pui, Electrical neutralization of aerosols, J. Aerosol Sci, vol.5, pp.465-472, 1974.

W. C. Hinds, Aerosol Technology. Properties, Behaviour, and Measurement of Airborne Particles, 1999.

, Aerodynamic Aerosol Classifier AAC User Manual, Version 1.10; User Interface Software v1.100; PC Tools; Cambustion, 2016.

A. Sediako, C. Soong, J. Howe, M. R. Kholghy, and M. J. Thomson, Real-time observation of soot aggregate oxidation in an Environmental Transmission Electron Microscope, Proc. Combust. Inst, vol.36, pp.841-851, 2015.

H. N. Sharma, L. Pahalagedara, A. Joshi, S. L. Suib, and A. B. Mhadeshwar, Experimental Study of Carbon Black and Diesel Engine Soot Oxidation Kinetics Using Thermogravimetric Analysis, Energy Fuels, vol.26, pp.5613-5625, 2012.

P. Fragkiadoulakis, S. Geivanidis, and Z. Samaras, Modeling a resistive soot sensor by particle deposition mechanisms, J. Aerosol Sci, vol.123, pp.76-90, 2018.

G. Teike, M. Dietzel, B. Michaelis, H. Schomburg, and M. Sommerfeld, Multiscale Lattice-Boltzmann Approach for Electrophoretic Particle Deposition, Aerosol Sci. Technol, vol.46, pp.451-464, 2012.