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abdelali rahmani's Page

Profile Information

I am...
Physicist, Doctor
My research field or area of interest innanotechnology
nanomaterials and nanotechnology
Interest in...
nanotubes properties and applications
Publication list
A. Rahmani and H. Chadli, Handbook of Nanophysics/ Structure and vibrations in C60 carbon peapods, , Editeur Klaus D. Sattler, Taylor and Francis Publisher (CRC Press, New York), 2010, p 46.1-29

1/ B. Fakrach, A. Rahmani, H. Chadli, K. Sbai, and M. Bentaleb, Infrared spectrum of single-walled boron nitride nanotubes, PHYSICAL REVIEW B 85, 115437 (2012)
2/ B Fakrach, A Rahmani, H Chadli, K Sbai, M Benhamou, M Bentaleb, J-L Bantignies and J-L Sauvajol, Computation of the infrared active modes in single-walled boron nitride nanotube bundles, J. Phys.: Condens. Matter 24 (2012) 335304 (7pp)

3/ B. Fakrach, A. Rahmani, H. Chadli, M. Bentaleb, K. Sbai , M. Benhamou, J-L. Bantignies and J-L. Sauvajol, Infrared-active modes in finite and infinite double-walled boron nitride nanotubes, Physica E: Low-dimensional systems and Nanostructures, 2012 (sous press)
4/ H. Chadli, A. Rahmani and J. -L. Sauvajol, Raman spectra of C60 dimer and C60 polymer confined inside a (10,10) single-walled carbon nanotube, J. of physics: Condens Mat. , 2010, 22, 145303
5/ B. Fakrach, A. Rahmani, H. Chadli, K. Sbai, J.-L. Sauvajol, Raman spectrum of single-walled boron nitride nanotube, Physica E 41, 2009, 1800–1805
6/ K.Sbai , A. Rahmani, H.Chadli and J. -L. Sauvajol, Raman active modes in homogeneous and inhomogeneous bundle of SWCNTs, J. of physics : Condens. Matter,2009 , 21, 45302
7/ K.Sbai, A. Rahmani, H.Chadli and J. -L. Sauvajol , Finite-size effect on the Raman-active modes of double-walled carbon nanotubes, J. of physics : Condens Matter , 2008, 20, 15204

8/ H. Chadli, A. Rahmani, K. Sbai, P. Hermet, S. Rols and J. -L. Sauvajol , Calculations Raman active modes on linear and zigzag phases of fullerene peapods, Phys. Rev. B, 2006 74, 205412
9/ J.-L. Bantignies, J. -L. Sauvajol, A. Rahmani and E. Flahaut, Infrared-active phonons in carbon nanotubes, Phys. Rev. B, 2006, 74, 195425
10/ K. Sbai, A. Rahmani, H. Chadli, J.-L. Bantignies, P. hermet and J. -L. Sauvajol Infrared spectroscopy of single-walled carbon nanotubes, J. Phys. Chem B, 2006, 110, 12388-12393
11/ P. Hermet, N. Izard, A. Rahmani and Ph. Ghosez Raman scattering in crystalline oligothiophenes: a comparaison between …, J. Phys. Chem. B, 2006, 110, 4700-4706
12/ H. Chadli, A. Rahmani, K. Sbai, and J. -L. Sauvajol, Raman-active modes in carbon peapods, Physica A 358, 226-236 , 2005
13/ P. Hermet, J.-L. Bantignies, A. Rahmani, J.-L. Sauvajol and , M. R. Johnson , Polymorphism of crystalline quaterthiophene and sexithiophene…, J. Phys. Chem. A, 2005, 109, 4202-4207
14/ A. Rahmani, J.-L. Sauvajol, J. Cambedouzou, and C. Benoit, Raman-active modes in finite and infinite double-walled carbon nanotubes, Phys. Rev. B, 2005, 71, 125402

15/ P. Hermet, J.-L. Bantignies, A. Rahmani, J.-L. Sauvajol, R. Johnson and F. Serein, Far- and Mid-Infrared of Crystalline 2,2’-Bithiophene: Ab Initio Analysis and…, J. Phys. Chem. A, 2005, 109, 1684-1691
16/ J. Cambedouzou, J.-L. Sauvajol, A. Rahmani, E. Flahaut, A. Peigney, and C.Laurent, Raman spectroscopy of iodine-doped double-walled carbon nanotubes, Phys. Rev. B , 2004, 69, 235422

17/ P Hermet, J-L Bantignies, A. Rahmani, J-L Sauvajol and M R Johnson, Density-of-states of crystalline 2,2'-bithiophene: ab initio analysis and …, J. Phys.: Condens. Matter, 2004, 16 No 41, 7385-7396
18/ A. Rahmani, M. Benoit, and C. Benoit Signature of small rings in the Raman spectra of normal and compressed …, Phys. Rev. B, 2003, 68, 184202
19/ A. Rahmani , Sauvajol J. –L. , Rols S. and Benoit C., Nonresonant Raman spectrum in infinite and finite single-wall carbon nanotubes, Phys. Rev. B, 2002 66, 125404
20/ A. Rahmani , Jund P., Benoit C. et Jullien R., Numerical study of the dynamical properties of silica aerogels, J. Phys.: Condens. Matter, 13,5413, 2001
21/ A. Rahmani, Benoit C., Jullien R., Poussigue G., Dynamics and Raman scattering in diffusion-limited cluster-cluster aggregation models, Phil. Mag. B, 1998, 77, 421-434

22/ A. Rahmani, C. Benoit, R. Jullien, G.Poussigue, Light scattering in fractals with scalar and bond-bending Models, J. Phys.: Condens. Matter, 1997, 9, 2149–2164
23/ A. Rahmani, C. Benoit, R. Jullien, G. Poussigue, Dynamical properties of a diffusion-limited cluster–cluster aggregation model, J. Phys.: Condens. Matter 8, 5555, 1996
24/ A. Rahmani, Benoit C. et Poussigue G. , Dynamic structure factor of percolating clusters at criticality, J. Phys.: Condens. Matter, 7, 8903, 1995
25/ A. Rahmani, Benoit C. et Poussigue G., Realistic dynamical model for silica aerogels and improved spectral moments method, J. Phys.: Condens. Matter, 6, 1483, 1994
26/ A. Rahmani, Benoit C., Royer E. et Poussigue G., Vibrational properties of random percolating networks, J. Phys.: Condens. Matter, 5, 7941, 1993
Researchgroup, Institute, University, School, Company name
Moulay Ismail University
Researchgroup, Institute, Company, University, School webpage
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Welcome - about us

Welcome! Nanopaprika was cooked up by Hungarian chemistry PhD student in 2007. The main idea was to create something more personal than the other nano networks already on the Internet. Community is open to everyone from post-doctorial researchers and professors to students everywhere.

There is only one important assumption: you have to be interested in nano!

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Publications by A. Paszternák:

Smartphone-Based Extension of the Curcumin/Cellophane pH Sensing Method

Pd/Ni Synergestic Activity for Hydrogen Oxidation Reaction in Alkaline Conditions

The potential use of cellophane test strips for the quick determination of food colours

pH and CO2 Sensing by Curcumin-Coloured Cellophane Test Strip

Polymeric Honeycombs Decorated by Nickel Nanoparticles

Directed Deposition of Nickel Nanoparticles Using Self-Assembled Organic Template,

Organometallic deposition of ultrasmooth nanoscale Ni film,

Zigzag-shaped nickel nanowires via organometallic template-free route

Surface analytical characterization of passive iron surface modified by alkyl-phosphonic acid layers

Atomic Force Microscopy Studies of Alkyl-Phosphonate SAMs on Mica

Amorphous iron formation due to low energy heavy ion implantation in evaporated 57Fe thin films

Surface modification of passive iron by alkylphosphonic acid layers

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Structure of the nonionic surfactant triethoxy monooctylether C8E3 adsorbed at the free water surface, as seen from surface tension measurements and Monte Carlo simulations

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