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1941cse-2008-subject-06-003
CSE 2008Paper II20 Marks

Assume a diatomic molecule consisting of two at- oms of masses m_1 and m_2, separated by a distance \vec{r}. Write down the Hamiltonian operator for the molecule. Determine the rotational energy levels of the molecule.

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1942cse-2008-subject-06-004
CSE 2008Paper II20 Marks

Write full form of acronyms EPR and NMR. Give underlying principle of EPR.

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1943cse-2008-subject-06-005
CSE 2008Paper II20 Marks

What do you understand by Raman effect ? Explain with help of a diagram, how it can be observed experimentally.

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1944cse-2008-subject-06-006
CSE 2008Paper II20 Marks

On the basis of electronic spectra of molecules explain, how fluorescence and phosphorescence occur. Distinguish between the two.

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1945cse-2008-subject-06-002
CSE 2008Paper II10 Marks

Draw the potential energy of a diatomic molecule as a function of interatomic distance. Mark the vibrational and rotational energy levels. Explain the selection rule for transition between vibrational states.

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1946cse-2008-subject-06-001
CSE 2008Paper II10 Marks

For transition to the ground state what is the longest wavelength that can be emitted by hydrogen ?

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1947cse-2008-subject-05-001
CSE 2008Paper II10 Marks

Explain normal and anomalous Zeeman effect. Obtain expression for Zeeman splitting of an alkali metal spectral line, and illustrate with an example.

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1948cse-2008-subject-05-002
CSE 2008Paper II10 Marks

Show that for the one dimensional wave function \psi(x) = \begin{cases} \frac{1}{\sqrt{2a}} & , \quad |x| < a \\ 0 & , \quad |x| > a \end{cases} where a is a real constant, the rms uncertainty in momentum is infinite.

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1949cse-2008-subject-05-003
CSE 2008Paper II10 Marks

Write (do not derive) the formula for the energy levels of a particle in a three dimensional cubical box of side L. How many electrons can occupy the level having energy 66h^2/8mL^2 ?

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1950cse-2008-subject-05-004
CSE 2008Paper II30 Marks

The Hamiltonian of a particle moving along the x-axis is given by \hat{H} = -\alpha \frac{d^2}{dx^2} + 16\alpha \hat{x}^2, where \alpha is a real and positive constant having dimensions of energy. (i) If \psi(x) = A e^{-2x^2}, find the normalization constant A. Check whether \psi is an eigen function of \hat{H}. If yes, find the corresponding eigen value. (ii) Calculate the probability of finding the particle anywhere along the negative x-axis. (iii) Find the eigen value of \hat{H} corresponding to the eigen function \phi(x) = x\psi(x), where \psi(x) is the same as in part (i). (iv) Are the wave functions \psi(x) and \phi(x) orthogonal ?

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1951cse-2008-subject-05-005
CSE 2008Paper II30 Marks

Show that the probability of transmission across the step barrier represented by the potential V(x) = \begin{cases} 0 & \text{for } x < 0 \\ V_0 & \text{for } x > 0 \end{cases} is T = \frac{4 k_1 k_2}{(k_1 + k_2)^2}, where k_1 and k_2 are wave numbers in regions x < 0 and x > 0, respectively.

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1952cse-2008-subject-05-008
CSE 2008Paper II20 Marks

An electron is moving freely in a one-dimensional infinite potential box with walls at x = 0 and x = a. If the electron is initially in the ground state of the box and if suddenly the wall at x = a is moved x = 4a, calculate the probability of finding the particle in the ground state of the new box.

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1953cse-2008-subject-05-006
CSE 2008Paper II10 Marks

An electron is in the spin state \chi = A \begin{pmatrix} 3i \\ 4 \end{pmatrix}. Determine the normalization constant A. Find the expectation value of the spin operator \hat{S}_x and also the uncertainty in the value of S_x in this state.

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1954cse-2008-subject-05-007
CSE 2008Paper II20 Marks

$ and [\hat{L}_-, \hat{L}_z]. Show that \hat{L}_+ |l, m\rangle = \sqrt{l(l+1) - m(m+1)} |l, m+1\rangle, where |l, m\rangle is the state with definite values for L^2 and L_z.

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1955cse-2008-subject-04-004
CSE 2008Paper I10 Marks

Consider N independent particles, each of which can be in either of two energy states +\epsilon and -\epsilon. Derive an expression for the entropy of a microcanonical ensemble for this system, where $ f = \sum_i \epsilon_i / N\epsilon $ is fixed, where $ \epsilon_i $ is the energy of the i-th particle.

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1956cse-2008-subject-04-005
CSE 2008Paper I20 Marks

Show that at T = 0, the Fermi distribution function has a value 1 for energies less than the Fermi energy $ \epsilon_F $ and is zero above it. For a system of non-interacting electrons at T = 0, show that the ground state energy of the system of N particles is $ \frac{3}{5} N \epsilon_F $.

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1957cse-2008-subject-04-006
CSE 2008Paper I10 Marks

Explain the Debye model of specific heat of solids. What are its success and failures ?

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1958cse-2008-subject-04-001
CSE 2008Paper I10 Marks

One mole of an ideal gas is compressed at constant temperature T from a volume V_1 to a volume V_2. Find the work done and heat absorbed by the gas. The gas now expands adiabatically to a volume 2V. Taking the gas to be diatomic, calculate the final temperature of the gas.

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1959cse-2008-subject-04-002
CSE 2008Paper I20 Marks

State second law of thermodynamics. Prove that no engine operating between two given temperatures is more efficient than a carnot engine operating between same two temperatures.

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1960cse-2008-subject-04-003
CSE 2008Paper I20 Marks

State the law of equipartition of energy. Show how this law can be used to calculate specific heat of gases and hence find the ratio $ \gamma = C_p/C_v $ for diatomic and triatomic gases.

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