Physical and Luminescence Studies of Natural Fluorescent Material (Stone)
This study investigates the physical properties (volume and density) and optical behavior of a natural
fluorescent stone under ultra-violet (UV) and green/red laser light.

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Research & Reviews : Journal of Physics Research & Reviews: Journal of Physics [2278- 2265] is a peer-reviewed hybrid open-access journal launched in 2012 focused on the publication of current research work carried out under Physics. This journal covers all major fields of applications …
Research & Reviews : Journal of Physics (RRJOPHY): 2278- 2265(e) is a peer-reviewed hybrid open-access journal launched in 2015 focused on the publication of current
rrjophy maintains an Editorial Board of practicing researchers from around the world, to ensure manuscripts are handled by editors who are experts in the field of study.

Prof. S. C. Aggrawal, Professor
Department of Physics, Indian Institute of Technology, Uttar Pradesh, India,
Email :
Institutional Profile Link: http://home.iitk.ac.in/~sca/
This study investigates the physical properties (volume and density) and optical behavior of a natural
fluorescent stone under ultra-violet (UV) and green/red laser light.
Thermoelectric materials capable of efficient energy conversion near room temperature are critical for
waste heat recovery applications.
Barium titanate (BaTiO3) is a widely studied ferroelectric material because of its high dielectric
permittivity and strong potential for electrostatic energy storage applications.
India's emergence as a global leader in deep-tech innovation is driven by ambitious scientific
megaprojects, including the Laser Interferometer Gravitational-Wave Observatory (LIGO)-India, the
X-ray Polarimeter Satellite (XPoSat), the Aditya-L1 solar observatory, and the National Quantum
Mission (NQM).
The theoretical calculations of electron impact single and double ionization cross section of Cr ion/atom have been estimated from threshold 32 eV to 1000 eV and 40eV to 6000 eV impact energies respectively.
The Discrete Fractional Fourier transform (DFRFT) provides an effective model of image encryption by further developing the classic Fourier transform by adding fractional orders, which increase the degrees of freedom.

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