Homework Set 2: Difference between revisions

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==Problem 1: Interaction U in second quantization==
==Problem 1: Pair correlation function==


==Problem 2: Pair correlation function==
==Problem 2: Magnons in one-dimensional Heisenberg model==
 
==Problem 3: Magnons in one-dimensional Heisenberg model==


Consider the low-energy excitations (magnons) above the ground state of a one-dimensional spin-S ferromagnet described by the isotropic Heisenberg model (<math> J>0 </math>):
Consider the low-energy excitations (magnons) above the ground state of a one-dimensional spin-S ferromagnet described by the isotropic Heisenberg model (<math> J>0 </math>):
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'''NOTE:''' Useful formula from Fourier analysis: <math> \frac{1}{N} \sum_{n=1}^N e^{i(k^\prime-k)na}=\delta_{kk^\prime} </math>.
'''NOTE:''' Useful formula from Fourier analysis: <math> \frac{1}{N} \sum_{n=1}^N e^{i(k^\prime-k)na}=\delta_{kk^\prime} </math>.
==Problem 3: Roton excitation in a superfluid==
A real superfluid is more complicated than a weakly interacting boson gas because the interaction is strong and can extend over a
finite range instead of being just a delta function used in the class. Suppose that interaction takes the form of a square function
<math> V(\mathbf{r} - \mathbf{r}') = U \mathrm{rect}\left(\frac{x-x'}{2r_0))\left(\frac{y-y'}{2r_0))\left(\frac{z-z'}{2r_0)) </math>
where <math> \mathrm{rect}(t) = 1 </math> when <math> |t| < 1/2 </math> and <math> \mathrm{rect}(t) = 0 </math> when <math> |t| > 1/2 </math>. The chosen interaction is highly anisotropic to make the calculations below tractable, but the qualitative features of the result will remain the same if we choose a more realistic isotropic form of the interaction potential energy.
'''(a)''' Write the second quantized Hamiltonian in terms of
<math> \hat{b}_\mathbf{}=\frac{1}{\sqrt{V}} \int d^3 r e^{-i\mathbf{k} \cdot \mathbf{r}} \hat{\Psi}(\mathbf{r})) </math> 
operator and its Hermitian conjugate.


==Problem 4: Gross-Pitaevski equation==
==Problem 4: Gross-Pitaevski equation==

Revision as of 11:59, 24 September 2019

Problem 1: Pair correlation function

Problem 2: Magnons in one-dimensional Heisenberg model

Consider the low-energy excitations (magnons) above the ground state of a one-dimensional spin-S ferromagnet described by the isotropic Heisenberg model (J>0):

H^=J2n=1N𝐒^n𝐒^n+1=J22n=1N(S^n+S^n+1+S^nS^n+1++2S^nzS^n+1z)

The periodic boundary conditions, 𝐒^n+1=𝐒^1 and 𝐒^N=𝐒^0, are imposed on spin operators.

(a) Apply the Holstein-Primakoff transformation, in the approximation where the density of magnons is small so that

S^n+2Sa^n

S^n2Sa^n

S^nz=(Sa^na^n)

and then expand the Hamiltonian above to the quadratic order in boson operators.

(b) Using the following Fourier transform

a^n=1Nkeiknaa^k

diagonalize the approximative Hamiltonian you obtained in (a) to find the magnon energy-momentum dispersion ωk in terms of J,S,a parameters. Here k=2πn/Na with a as the lattice constant and n=0,±1,,(N1)/2,±N/2.

(c) What is the total number of such non-interacting magnons at temperature ? You should simply write the integral expression without fully evaluating it.


NOTE: Useful formula from Fourier analysis: 1Nn=1Nei(kk)na=δkk.

Problem 3: Roton excitation in a superfluid

A real superfluid is more complicated than a weakly interacting boson gas because the interaction is strong and can extend over a finite range instead of being just a delta function used in the class. Suppose that interaction takes the form of a square function

Failed to parse (syntax error): {\displaystyle V(\mathbf{r} - \mathbf{r}') = U \mathrm{rect}\left(\frac{x-x'}{2r_0))\left(\frac{y-y'}{2r_0))\left(\frac{z-z'}{2r_0)) }

where rect(t)=1 when |t|<1/2 and rect(t)=0 when |t|>1/2. The chosen interaction is highly anisotropic to make the calculations below tractable, but the qualitative features of the result will remain the same if we choose a more realistic isotropic form of the interaction potential energy.

(a) Write the second quantized Hamiltonian in terms of

b^=1Vd3rei𝐤𝐫Ψ^(𝐫))

operator and its Hermitian conjugate.

Problem 4: Gross-Pitaevski equation