Thank you, mfb and Einj, for your replies.
First, to mfb
mfb said:
As I understand it, the electron has a definite spin value only upon being measured. So, after measurement, it would seem that it would have a high probability of being in some other state than upon being measured. Apart from that, the system evolves with time, doesn't it?
mfb said:
Also, what is a very short time for you?
From one point of view, right after being measured; it would of course also depend on its environment: for example, however, in terms of flipping from an indefinite state to a definite one, in the environment of a human brain, Max Tegmark comes up with a value of about 10
-13 seconds.
mfb said:
This has some relation to decoherence, but "keeps the spin orientation" is more demanding than "does not lead to decoherence"
Yes, I see that now. Thank you for pointing that out.
To Einj
Einj said:
If the initial spin configuration of your system is an eigenstate of the Hamiltonian then it should remain the same.
Alas, I do not completely understand. If the eigenstate of the Hamiltonian has two eigenvalues, then supposedly each one has a non-zero expectation value, so why should it continue to be one rather than the other? I have no doubt that your answer is correct, but I am missing the connection between the premise and the conclusion. I would be grateful if you could spell it out for me.