Editor-in-Chief : V.K. Rastogi
ASIAN JOURNAL OF PHYSICS
An International Peer Reviewed Research Journal
Frequency : Monthly,
ISSN : 0971 – 3093
Editor-In-Chief (Hon.) :
Dr. V.K. Rastogi
e-mail:[email protected]
[email protected]
AJP | ISSN : 0971 – 3093 Vol 16, No. 1, January-March, 2007 |
Vol. 16, No 1 (2007) 1-9
Variation in area and intensity of the
solar chromospheric network elements and their contribution to UV irradiance
variability
R Kariyappa, B A Varghese and L Dame*
Indian Institute ofAstrophysics,
Bangalore 560 034, India
*Service d’Aeronomie du CNRS, BP # 3,
91371 Verrieres-le-Buisson Cedex, France
The Sun is the primary source of energy responsible for governing both
the weather and climate of Earth. For that reason alone one would expect that
changes in the amount and type of energy Earth received from the Sun could alter
weather and climate on the Earth. The variations in the UV irradiance are
produced by surface manifestation of solar magnetic activity. Considering the
variations in the solar UV flux may cause significant changes in the Earth’s
climate, understanding the physical origin of UV irradiance changes is an
extremely important issue in Solar and Space Physics.
We have segregated the (i) plages, (ii) magnetic network, and (iii)
intranetwork + the background regions from the CaII K spectroheliograms of 1980
and 1992, observed at the National Solar Observatory at Sacramento Peak, using
their histograms taken for the full-disk. The different parameters like the
intensity and area of the chromospheric features, the full-disk intensity
(spatial K index), and the full width at half maximum (FWHM) of the histograms
[1], have been derived from the images. The spatial K index, FWHM, and the
intensity of various features have been compared to the UV irradiance measured
in the MgII h and k lines by the Nimbus7 and NOAA9 satellites and it has been
found that they are correlated with the MgII h and k c/w ratio. We established,
for the first time, from the results of 1992 images [1] and of 1980 that the
FWHM can be used as a good index for measuring and describing the chromospheric
activity in the K-line. The results of both 1980 and 1992 images show an
anticorrelation between the intensity and area of the network elements, which
confirm the earlier findings derived entirely from different data set from
Kodaikanal CaII K spectroheliograms analyzed for the center of the solar disc in
a quiet regions for a longer time interval of 1957 to 1983 [2]. During solar
minimum the network is fainter but covers a larger area than during solar
maximum. These results suggest that the variations in both the intensity and
area of the various chromospheric features have to be taken into account in
irradiance models.
Keywords: Chromospheric features, Spatial K index, full width at half
maximum (FWHM)
© Anita Publications. All rights reserved.
Total Refs: 24
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Vol 16, No 1 (2007) 11-16
The study of Raman, FT-IR reflection and
transmission spectroscopy of acidic α-LiIO3 crystal and its
birefringence properties
R Malekfar and M Rezvani Jalal
Physics Department
Faculty of Basic Sciences, Tarbiat
Modarres University, P.O. Box 14115-175, Tehran, I. R. Iran
α-LiIO3 crystal has found wide spread applications in second
harmonic generation, nonlinear optics, one dimensional ionic conductors and
acousto-optic modulators especially in the visible and near infrared region.
This crystal was grown from acidic saturated solution of α-LiIO3 salt
by the method of slow evaporation of isothermal solution with about 1 × 1 2 cm3 dimensions.
In the visible region this crystal is transparent and is a negative uniaxial
crystal. The Raman, FT-IR reflection and transmission spectra of this crystal
from both surfaces parallel and perpendicular to the crystal optical axis were
obtained. With the help of Kramers – Kronig relations of reflection the ordinary
and extra- ordinary refractive indices in the 400 – 4000 cm-1 region
were calculated and it was shown that in this range, and particularly in the 700
-900 cm-1 region, this crystal converts to a positive uniaxial
crystal. The imaginary part of the refractive index and the electrical
susceptibilities of the crystal in the mentioned directions and in the 400 –
1000 cm-1 region were also calculated.
Keywords: LiIO3 crystal, Raman and FT-IR reflection,
Kramers – Kronig relations
©Anita Publications. All rights reserved.
Total Refs: 10
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Vol 16, No 1 (2007) 23-27
Synthesis and spectral studies of
Co(II), Ni(II) and Cu(II) complexes with Schiff bases
derived from 2-methyl-thioquinazolin-4(3H) one*
B K Rai1, Irena Kostova2, S P
Ojha3, Rashmi Tomar4 and V K Rastogi4
1Department
of Chemistry, LNT College, (BRA Bihar University), Muzaffarpur-842 002, India
2Department
of Chemistry, Faculty of Pharmacy, Medical University, 2 Dunav St, Sofia-1000,
Bulgaria
3Vice Chancellor, CCS University, Meerut-205 004, India
4Department
of Physics, Chaudhary Charan Singh University, Meerut-250 004, India
Mixed ligand Schiff base complexes of the type [M(MTSC)2X2]
and [M(MTTSC)2X2], where M = Co(II), Ni(II) and Cu(II),
MTSC = 2-methyl-thioqionazolin-4(3H) one semicarbazone, MTTSC =
2-methyl-thioquinazolin-4(3H) one thiosemicarbazone and X = Cl–, Br – and
I– have been isolated. The ligands and complexes have been
characterised by elemental analysis, infrared and electronic spectra, magnetic
susceptibility and conductivity data. On the basis of I.R. spectra, the ligands,
MTSC and MTTSC have been proposed to act in a bidentate manner, co-ordinating to
the metal ions through the azomethine nitrogen and oxygen/sulphur atoms of
either semicarbazone or thiosemicarbazone moiety. The remaining co-ordination
sites are occupied by anions such as Cl–, Br– and
Electronic spectral and magnetic susceptibility data proposed octahedral
geometry of the complexes around the central metal ion. The complexes were found
to be non-electrolytic in nature. © Anita Publications. All rights reserved.
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Vol 16, No 1 (2007)80-82
On the nature of scattering of some tea samples of Assam
N Dehingia, R Changrnai and G D Baruah
Department of Physics, Dibrugarh University, Dibrugarh – 786 004, India
Scattered radiation at wavelength 6328Å from nine samples of blended tea solutions of different qualities have been investigated. Intensity measurements of the radiations indicate a possible correlation with the quality of the sample. © Anita Publications. All rights reserved
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