W. G. Graham and K. R. Stalder, Plasmas in liquids and some of their applications in nanoscience, J Phys D: Appl Phys, vol.44, p.174037, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00613289

A. A. Ashkarran, Metal and metal oxide nanostructures prepared by electrical arc discharge method in liquids, J Clust Sci, vol.22, pp.233-266, 2011.

T. Belmonte, A. Hamdan, F. Kosior, C. Noël, and G. Henrion, Interaction of discharges with electrode surfaces in dielectric liquids: application to nanoparticle synthesis, J Phys D: Appl Phys, vol.47, p.224016, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01285335

V. S. Burakov, E. A. Nevar, M. I. Nedel'ko, and N. V. Tarasenko, Synthesis and modification of molecular nanoparticles in electrical discharge plasma in liquids, Russ J Gen Chem, vol.85, pp.1222-1237, 2015.

G. Saito and T. Akiyama, Nanomaterial synthesis using plasma generation in liquid, J Nanomater, vol.2015, p.123696, 2015.

S. Liu, M. Kobayashi, S. Sato, and K. Kimura, Synthesis of silicon nanowires and nanoparticles by arc-discharge in water, Chem Commun, vol.37, pp.4690-4692, 2005.

N. Sano and H. Tamon, Submerged arc discharge technique to explore novel noncarbon nanotubes: Syntheses of nanotubes from ZnO and BaTiO 3, Jap J Appl Phys, vol.53, p.48002, 2014.

T. Sagara, S. Kurumi, and K. Suzuki, Growth of linear Ni-filled carbon nanotubes by local arc discharge in liquid ethanol, Appl Surf Sci, vol.292, pp.39-43, 2014.

W. T. Yao, S. H. Yu, Y. Zhou, J. Jiang, Q. S. Wu et al., Formation of uniform CuO nanorods by spontaneous aggregation: Selective synthesis of CuO, Cu 2 O, and Cu nanoparticles by a solid? liquid phase arc discharge process, J Phys Chem B, vol.109, pp.14011-14016, 2005.

S. Krishnan, A. Haseeb, and M. R. Johan, Synthesis and growth kinetics of spindly CuO nanocrystals via pulsed wire explosion in liquid medium, J Nanopart Res, vol.15, p.1410, 2013.

S. Y. Xie, Z. J. Ma, C. F. Wang, S. C. Lin, Z. Y. Jiang et al., Preparation and self-assembly of copper nanoparticles via discharge of copper rod electrodes in a surfactant solution: a combination of physical and chemical processes, J Solid State Chem, vol.177, pp.3743-3747, 2004.

K. D. Hermanson, S. O. Lumsdon, J. P. Williams, E. W. Kaler, and O. D. Velev, Dielectrophoretic assembly of electrically functional microwires from nanoparticle suspensions, Science, vol.294, pp.1082-1086, 2001.

O. D. Velev, S. Gangwal, and D. N. Petsev, Particle-localized AC and DC manipulation and electrokinetics, Ann Rep C Phys Chem, vol.105, pp.213-246, 2009.

S. O. Lumsdon, E. W. Kaler, and O. D. Velev, Two-dimensional crystallization of microspheres by a coplanar AC electric field, Langmuir, vol.20, pp.2108-2116, 2004.

A. Hamdan, C. Noël, and T. Belmonte, Synthesis of carbon fibres by electrical discharges in heptane, Mater Lett, vol.135, pp.115-118, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01285339

A. Hamdan, C. Noël, J. Ghanbaja, S. Migot-choux, and T. Belmonte, Synthesis of platinum embedded in amorphous carbon by micro-gap discharge in heptane, Mater Chem Phys, vol.142, pp.199-206, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01284944

T. A. Witten and L. M. Sander, Diffusion-limited aggregation, Phys Rev B, vol.27, pp.5686-5697, 1983.

L. Ludvigsson and B. O. Meuller, Messing, ME (2015) Investigations of initial particle stages during spark discharge, J Phys D: Appl Phys, vol.48, p.314012

R. Molinder, L. Sandström, and H. Wiinikka, Characteristics of particles in pyrolysis oil, Energy Fuels, vol.30, issue.11, pp.9456-9462, 2016.

B. Durand and J. C. Monin, Kerogen: Insoluble Organic Matter from Sedimentary Rocks, Elemental analysis of kerogens, vol.4, 1980.

, Micro-pattern of type 2 filamentary wires. (a) Subtype 2a twisted wire showing a nanostructural pattern of the folded matrix. BSE-SEM. (b) Subtype 2b multifilament wire (cf. figure 6b) showing the very fine nanostructural pattern of elementary filament, vol.8

, Dense imbrication of nanostructured filament for a subtype 2b multifilament wire

, Plant cell with carbonate inclusion (in bright) in a subtype 2d wire (cf. figure 6c)

, Example of wire synthesized using graphite electrodes. (b) Low-resolution and (c) high-resolution TEM images showing the HAC sheet, Figure, vol.14