Exchange symmetry when isospin is concerned?

Click For Summary
SUMMARY

In quantum mechanics, the wavefunction of a proton-neutron system must be antisymmetric under exchange due to the principles governing identical fermions. While protons and neutrons are not identical in terms of mass and charge, they can be treated as identical fermions in the context of isospin symmetry, which requires the overall wavefunction to be antisymmetrized. This treatment is valid because, from the perspective of the strong force, protons and neutrons interact identically and can be converted into one another through weak interactions. Therefore, the antisymmetry requirement applies specifically when considering isospin, despite the differences between the two particles.

PREREQUISITES
  • Understanding of quantum mechanics and wavefunctions
  • Familiarity with the concepts of fermions and bosons
  • Knowledge of isospin symmetry in particle physics
  • Basic principles of the strong and weak nuclear forces
NEXT STEPS
  • Study the implications of isospin symmetry in nuclear physics
  • Learn about the properties of identical fermions and bosons
  • Explore the role of the strong force in particle interactions
  • Investigate the differences between protons and neutrons in detail
USEFUL FOR

Physicists, particularly those specializing in quantum mechanics and particle physics, as well as students seeking to understand the nuances of wavefunction symmetry and isospin in nuclear interactions.

Silversonic
Messages
121
Reaction score
1
As far as I know identical fermions are antisymmetric under exchange. Identical bosons are symmetric under exchange. Is this fact blurred when we consider isospin? Considering the wavefunction of a proton-neutron system;

\psi = \psi_{space} \psi_{spin} \psi_{isospin}

I'm told this needs to be antisymmetric under exchange of the proton and neutron, but they are not identical fermions. Does it need to be antisymmetric because we consider isospin which does view the proton and neutron as identical fermions?
 
Physics news on Phys.org
neutron and proton are fermions, so their wf has to be antisymmetric...
 
I thought that only applied to identical fermions? Guess I was wrong.
 
Silversonic said:
As far as I know identical fermions are antisymmetric under exchange. Identical bosons are symmetric under exchange. Is this fact blurred when we consider isospin? Considering the wavefunction of a proton-neutron system;

\psi = \psi_{space} \psi_{spin} \psi_{isospin}

I'm told this needs to be antisymmetric under exchange of the proton and neutron, but they are not identical fermions. Does it need to be antisymmetric because we consider isospin which does view the proton and neutron as identical fermions?
Isospin is an optional convention. You can treat protons and neutrons as different fermions, in which case the wavefunction does not need to be antisymmetrized. Or, you can treat them as identical, with an extra degree of freedom whose symmetry is used to make the overall wavefunction antisymmetric.
 
From the point of view of the strong force the proton and neutron are identical. They interact with the strong force identically and can be converted into each other easily (through the weak interaction). If any of those two statements weren't true there would be little sense in treating them as identical. Note that this treatment is inexact. Protons and neutrons have different masses and charges and the conversion between them requires the production of leptons.
 
  • Like
Likes   Reactions: 1 person
Apologies for the necro-bump but I want to make sure I've got this correct as I'm coming back to it.

So is the antisymmetry of total wavefunction under exchange of two general fermions definitely not thing? It's definitely only for two identical fermions, e.g. two protons, or a neutron/proton when considering isospin?
 
See post #4 above. Answer hasn't changed.
 
  • Like
Likes   Reactions: 1 person
Silversonic said:
Apologies for the necro-bump but I want to make sure I've got this correct as I'm coming back to it.

So is the antisymmetry of total wavefunction under exchange of two general fermions definitely not thing? It's definitely only for two identical fermions, e.g. two protons, or a neutron/proton when considering isospin?

Yes, you only need to take care of symmetry/anti-symmetry when the two particles are identical. In the case of the (approximate) isospin symmetry, neutron and proton are (approximately) identical.
 

Similar threads

Undergrad Forbidden decay ##\rho^0\rightarrow \pi^0\pi^0##
  • · Replies 4 ·
Replies
4
Views
4K
Graduate Isospin breaking, charge symmetry and charge indepedence
  • · Replies 3 ·
Replies
3
Views
4K
Graduate Why is a deuteron an antisymmetric singlet in
  • · Replies 4 ·
Replies
4
Views
12K
Undergrad Imagining a Higgsless Universe
  • · Replies 35 ·
2
Replies
35
Views
9K
Undergrad Is baryon antisymmetry always true?
  • · Replies 4 ·
Replies
4
Views
2K
Undergrad How Does Beta Decay Relate to the Role of W Bosons in Weak Nuclear Force?
  • · Replies 4 ·
Replies
4
Views
4K
Undergrad How is spin exchange interaction generalised to many electrons?
  • · Replies 2 ·
Replies
2
Views
2K
Graduate Understanding the baryon wavefunction
  • · Replies 2 ·
Replies
2
Views
4K
Undergrad Exchange symmetry of two particles on a sphere
  • · Replies 1 ·
Replies
1
Views
2K
Computing the Isospin of the Deuteron
  • · Replies 3 ·
Replies
3
Views
4K