casseverhart13
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danielsw98667
2019-10-21 06:53:45 |
D is the most obvious answer. altera
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ernest21
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joshuaprice153
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idoubt
2015-10-19 06:55:38 | I think the answer has to do with the fact that photons are a spin 1 particle and it cannot have the m = 0 state. So to emit a photon the two wave functions must have an angular momentum difference  . This is not possible if both are S shell. | |
jgramm
2014-09-23 21:58:30 | If they're both spherical, they're both in the s shell (think back to those silly pictures of orbitals in high school chem).
If  transitioned to  , both electrons (fermions) would occupy the same state, which is not allowed by the Pauli exclusion principle.
Thus, D is the obviously the answer without having to worry about any of that selection rule nonsense that nobody ever remembers (or maybe it's just me).
Baharmajorana
2014-10-15 06:04:04 |
I agree with u, I can't remember too
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James6M
2014-10-15 20:36:49 |
Um, what?
There is only one electron in a hydrogen atom, so I don't know why you are talking about "both." And just because both wavefunctions are s-shells, that doesn't mean they are the same wavefunction. They can have different n.
So, no, the Pauli exclusion principle has nothing to do with this question.
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a_coiled_atom
2011-07-16 12:35:34 | I thought of it in terms of the selection rules , . If the initial state has , which corresponds to spherical symmetry in the wavefunction, then according to these the final state must have , which is not spherically symmetric. | |
a_coiled_atom
2011-07-16 12:34:28 | I thought of it in terms of the selection rules  ,  . If the initial state has  , which corresponds to spherical symmetry in the wavefunction, then according to these the final state must have  , which is not spherically symmetric.
pam d
2011-09-24 11:31:55 |
This is how it's done.
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thebigshow500
2008-10-13 22:12:48 | Can anyone explain if other choices are something to do with wave function? (e.g. parity, orthogonality, etc.) Or are these choices just simply nonsense? :(
kroner
2009-10-16 12:06:41 |
(A): I'm not really sure what this is talking about.
(B): Any two different eigenstates are mutually orthogonal. So in any transition this is required.
(C): The eigenstates that are zero at the center are those with l>0. This is allowed (for example l could change from 3 to 2).
(E): The selection rules require l to change.
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alemsalem
2010-09-21 04:32:38 |
the states with even l have even parity(1) and those with odd l have odd parity(-1) since in transitions l changes by plus or minus 1 the parity must change in any transition, so (A) is out
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lattes
2008-10-13 09:18:54 | it might be useful to make an analogy with electromagnetism. It's known that a pulsating sphere does not emit radiation because of its spherical symmetry. An analogy can be made with wave-function. (D). For further reading check out Beiser's book on modern physics pag. 165. | |
curie
2008-10-08 05:55:58 | Why does spherically-symmetric imply same angular momentum?
rkraman
2008-10-15 14:35:02 |
This has to do with the symmetry properties in mechanics. If the Lagrangian (and hence the Hamiltonian) describing a system is symmetrical with respect to any coordinate, then the canonical momentum corresponding to that coordinate is conserved. So if there is translation symmetry in  , the the canonical momentum which is the linear momentum  is conserved. Similarly if the Hamiltonian is rotationally invariant, it is symmetrical with respect to  , then the corresponding angular momentum  , which is nothing but the angular momentum  , is conserved. This is a specific instance of a fundamental theorem in Physics called the Noether's theorem.
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spacemanERAU
2009-10-15 18:04:53 |
VERY VERY good explanation rkraman! kudos!
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flyboy621
2010-11-14 20:52:31 |
Also, if the wavefunction is spherically symmetric, that means .
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evanb
2008-06-20 11:56:30 | "completely unique relative..."
I'm not sure exactly what that means, but if it means that m must also change that's not quite right.
The selection rules are that NO TRANSITION OCCURS UNLESS:
 m = {-1, 0, +1} and
l = {-1 , +1}.
 has ore options. | |
