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Physics – Optional (Main Examination)
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Paper-I
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Section-A
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Classical Mechanics
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(a) Particle dynamics
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Centre of
mass and laboratory coordinates, conservation of linear and angular
momentum. The rocket equation. Rutherford scattering, Galilean
transformation, intertial and non-inertial frames, rotating frames,
centrifugal and Coriolis forces, Foucault pendulum.
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(b)
System
of particles
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Constraints,
degrees of freedom, generalised coordinates and momenta. Lagrange's
equation and applications to linear harmonic oscillator, simple pendulum
and central force problems. Cyclic coordinates, Hamilitonian Lagrange's
equation from
Hamilton
's principle.
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(c)
Rigid
body dynamics
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Eulerian
angles, inertia tensor, principal moments of inertia. Euler's equation of
motion of a rigid body, force-free motion of a rigid body. Gyroscope.
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2.
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Special
Relativity, Waves & Geometrical Optics
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(a)
Special
Relativity
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Michelson-Morley
experiment and its implications. Lorentz transformations-length
contraction, time dilation, addition of velocities, aberration and Doppler
effect, mass-energy relation, simple applications to a decay process.
Minkowski diagram, four dimensional momentum vector. Covariance of
equations of physics.
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(b)
Waves
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Simple
harmonic motion, damped oscillation, forced oscillation and resonance.
Beats. Stationary waves in a string. Pulses and wave packets. Phase and
group velocities. Reflection and Refraction from Huygens' principle.
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(c)
Geometrical
Optics
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Laws of
relfection and refraction from Fermat's principle. Matrix method in
paraxial optic-thin lens formula, nodal planes, system of two thin lenses,
chromatic and spherical aberrations.
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3.
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Physical
Optics
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(a)
Interference
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Interference
of light-Young's experiment,
Newton
's rings, interference by thin films, Michelson interferometer. Multiple
beam interference and Fabry-Perot interferometer. Holography and simple
applications.
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(b)
Diffraction
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Fraunhofer
diffraction-single slit, double slit, diffraction grating, resolving
power. Fresnel diffraction: - half-period zones and zones plates. Fresnel
integrals. Application of Cornu's spiral to the analysis of diffraction at
a straight edge and by a long narrow slit. Diffraction by a circular
aperture and the Airy pattern.
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(c)
Polarisation
and Modern Optics
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Production
and detection of linearly and circularly polarised light. Double
refraction, quarter wave plate. Optical activity. Principles of fibre
optics attenuation; pulse dispersion in step index and parabolic index
fibres; material dispersion, single mode fibres. Lasers-Einstein A and B
coefficients. Ruby and He-Ne lasers. Characteristics of laser
light-spatial and temporal coherence. Focussing of laser beams.
Three-level scheme for laser operation.
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Section-B
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4.
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Electricity
and Magnetism
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(a)
Electrostatics
and Magnetostatics
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Laplace ad
Poisson equations in electrostatics and their applications. Energy of a
system of charges, multipole expansion of scalar potential. Method of
images and its applications. Potential and field due to a dipole, force
and torque on a dipole in an external field. Dielectrics, polarisation.
Solutions to bounary-value problems-conducting and dielectric spheres in a
uniform electric field. Magentic shell, uniformly magnetised sphere.
Ferromagnetic materials, hysteresis, energy loss.
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(b)
Current
Electricity
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Kirchhoff's
laws and their applications. Biot-Savart law, Ampere's law, Faraday's law,
Lenz' law. Self-and mutual-inductances. Mean and rms values in AC
circuits. LR CR and LCR circuits- series and parallel resonance. Quality
factor. Principal of transformer.
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5.
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Electromagnetic
Theory & Black Body Radiation
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(a)
Electromagnetic
Theory
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Displacement
current and Maxwell's equatons. Wave equations in vacuum, Poynting
theorem. Vector and scalar potentials. Gauge invariance, Lorentz and
Coulomb gauges. Electromagnetic field tensor, covariance of Maxwell's
equations. Wave equations in isotropic dielectrics, reflection and
refraction at the boundary of two dielectrics. Fresnel's relations. Normal
and anomalous dispersion. Rayleigh scattering.
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(b)
Blackbody
radiation
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Balckbody
radiation and Planck radiation law- Stefan-Boltzmann law, Wien
displacement law and Rayleigh-Jeans law. Planck mass, Planck length,
Planck time,. Planck temperature and Planck energy.
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6.
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Thermal
and Statistical Physics
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(a)
Thremodynamics
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Laws of
thermodynamics, reversible and irreversible processes, entropy.
Isothermal, adiabatic, isobaric, isochoric processes and entropy change.
Otto and Diesel engines, Gibbs' phase rule and chemical potential. van der
Waals equation of state of a real gas, critical constants. Maxwell-Boltzman
distribution of molecular velocities, transport phenomena, equipartition
and virial theorems. Dulong-Petit, Einstein, and Debye's theories of
specific heat of solids. Maxwell relations and applications. Clausius-
Clapeyron equation. Adiabatic demagnetisation, Joule-Kelvin effect and
liquefaction of gases.
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(b)
Statistical
Physics
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Saha
ionization formula. Bose-Einstein condenssation. Thermodynamic behaviour
of an ideal Fermi gas, Chandrasekhar limit, elementary ideas about neutron
stars and pulsars. Brownian motion as a random walk, diffusion process.
Concept of negative temperatures.
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Paper-II
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Section-A
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1.
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Quantum
Mechanics I
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Wave-particle
dualitiy. Schroedinger equation and expectation values. Uncertainty
principle. Solutions of the one-dimensional Schroedinger equation free
particle (Gaussian wave-packet), particle in a box, particle in a finite
well, linear harmonic oscillator. Reflection and transmission by a
potential step and by a rectangular barrier. Use of WKB formula for the
life-time calcuation in the alpha-decay problem.
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2.
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Quantum
Mechanics II & Atomic Physics
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(a)
Quantum
Mechanics II
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Particle in
a three dimensional box, density of states, free electron theory of
metals. The angular meomentum problem. The hydrogen atom. The spin half
problem and properties of Pauli spin matrices.
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(b)
Atomic
Physics
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Stern-Gerlack
experiment, electron spin, fine structure of hydrogen atom. L-S coupling,
J-J coupling. Spectroscopic notation of atomic states. Zeeman effect.
Frank-Condon principle and applications.
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3.
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Molecular
Physics
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Elementary
theory of rotational, vibratonal and electronic spectra of diatomic
molecules. Raman effect and molecular structure. Laser Raman spectroscopy
Importance of neutral hydrogen atom, molecular hydrogen and molecular
hydrogen ion in astronomy Fluorescence and Phosphorescence. Elementary
theory and applications of NMR. Elementary ideas about Lamb shift and its
significance.
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Section-B
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4.
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Nuclear
Physics
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Basic
nuclear properties-size, binding energy, angular momentum, parity,
magnetic moment. Semi-empirical mass formula and applications. Mass
parabolas. Ground state of a deuteron magnetic moment and non-central
forces. Meson theory of nuclear forces. Salient features of nuclear
forces. Shell model of the nucleus-success and limitations. Violation of
parity in beta decay. Gamma decay and internal conversion. Elementary
ideas about Mossbauer spectroscopy. Q-value of nuclear reactions. Nuclear
fission and fusion, energy production in stars. Nuclear reactors.
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5.
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Particle
Physics & Solid State Physics
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(a)
Particle
Physics
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Classification
of elementary particles and their interactions. Conservation laws. Quark
structure of hadrons. Field quanta of electroweak and strong interactions.
Elementary ideas about Unification of Forces. Physics of neutrinos.
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(b)
Solid
State Physics
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Cubic
crystal structure. Band theory of solids- conductors, insulators and
semiconductors. Elements of superconductivity, Meissner effect, Josephson
junctions and applications. Elementary ideas about high temperature
superconductivity.
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6.
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Electronics
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Intrinsic
and extrinsic semiconductors-p-n-p and n-p-n transistors.Amplifiers and
oscillators. Op-amps. FET, JFET and MOSFET. Digital electronics-Boolean
identities, De Morgan's laws, Logic gates and truth tables., Simple logic
circuits. Thermistors, solar cells. Fundamentals of microprocessors and
digital computers.
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