Magnetic properties of carbon nanoparticles
Închide
Articolul precedent
Articolul urmator
162 6
Ultima descărcare din IBN:
2023-09-13 16:23
SM ISO690:2012
LÄHDERANTA, Erkki, LASHKUL, Alexander V., LISUNOV, Konstantin, ZHEREBTSOV, Dmitry, GALIMOV, D., TITKOV, Alexander. Magnetic properties of carbon nanoparticles. In: IOP Conference Series: Materials Science and Engineering, Ed. 38, 17-20 aprilie 2012, Riga. Riga: 2012, Vol.38, Issue 1, p. 0. ISSN E-ISSN:1757-899X. DOI: https://doi.org/10.1088/1757-899X/38/1/012010
EXPORT metadate:
Google Scholar
Crossref
CERIF

DataCite
Dublin Core
IOP Conference Series: Materials Science and Engineering
Vol.38, Issue 1, 2012
Conferința "International Conference on Functional Materials and Nanotechnologies"
38, Riga, Letonia, 17-20 aprilie 2012

Magnetic properties of carbon nanoparticles

DOI:https://doi.org/10.1088/1757-899X/38/1/012010

Pag. 0-0

Lähderanta Erkki1, Lashkul Alexander V.1, Lisunov Konstantin12, Zherebtsov Dmitry3, Galimov D.3, Titkov Alexander4
 
1 Lappeenranta University of Technology,
2 Institute of Applied Physics, Academy of Sciences of Moldova,
3 South Ural State University,
4 Ioffe Physical-Technical Institute, RAS
 
 
Disponibil în IBN: 2 iunie 2023


Rezumat

Magnetization M (T, B) of powder and glassy samples containing carbon nanoparticles is investigated in the interval of temperatures T between ∼ 3 - 300 K and magnetic fields B up to 5 T. Low-field magnetization, M (T), exhibits a strong magnetic irreversibility, which is suppressed above the field of ∼ 1 T. The dependence of M (B) saturates at high temperatures above B ∼ 2 T, magnetic hysteresis is observed already at 300 K. The values of the saturation magnetization, the coercivity field and the maximum blocking temperature are obtained. Analysis of the experimental data gives evidence for concentration of the magnetization close to the surface of the particles, which is consistent with the origin of magnetism in nanocarbon presumably due to intrinsic disorder and surface defects

Cuvinte-cheie
carbon, Functional materials, Glassy carbon, magnetic properties, Nanomagnetics, nanoparticles