What is Wavefunctions: Definition and 145 Discussions

A wave function in quantum physics is a mathematical description of the quantum state of an isolated quantum system. The wave function is a complex-valued probability amplitude, and the probabilities for the possible results of measurements made on the system can be derived from it. The most common symbols for a wave function are the Greek letters ψ and Ψ (lower-case and capital psi, respectively).
The wave function is a function of the degrees of freedom corresponding to some maximal set of commuting observables. Once such a representation is chosen, the wave function can be derived from the quantum state.
For a given system, the choice of which commuting degrees of freedom to use is not unique, and correspondingly the domain of the wave function is also not unique. For instance, it may be taken to be a function of all the position coordinates of the particles over position space, or the momenta of all the particles over momentum space; the two are related by a Fourier transform. Some particles, like electrons and photons, have nonzero spin, and the wave function for such particles includes spin as an intrinsic, discrete degree of freedom; other discrete variables can also be included, such as isospin. When a system has internal degrees of freedom, the wave function at each point in the continuous degrees of freedom (e.g., a point in space) assigns a complex number for each possible value of the discrete degrees of freedom (e.g., z-component of spin) – these values are often displayed in a column matrix (e.g., a 2 × 1 column vector for a non-relativistic electron with spin 1⁄2).
According to the superposition principle of quantum mechanics, wave functions can be added together and multiplied by complex numbers to form new wave functions and form a Hilbert space. The inner product between two wave functions is a measure of the overlap between the corresponding physical states, and is used in the foundational probabilistic interpretation of quantum mechanics, the Born rule, relating transition probabilities to inner products. The Schrödinger equation determines how wave functions evolve over time, and a wave function behaves qualitatively like other waves, such as water waves or waves on a string, because the Schrödinger equation is mathematically a type of wave equation. This explains the name "wave function", and gives rise to wave–particle duality. However, the wave function in quantum mechanics describes a kind of physical phenomenon, still open to different interpretations, which fundamentally differs from that of classic mechanical waves.In Born's statistical interpretation in non-relativistic quantum mechanics,
the squared modulus of the wave function, |ψ|2, is a real number interpreted as the probability density of measuring a particle as being at a given place – or having a given momentum – at a given time, and possibly having definite values for discrete degrees of freedom. The integral of this quantity, over all the system's degrees of freedom, must be 1 in accordance with the probability interpretation. This general requirement that a wave function must satisfy is called the normalization condition. Since the wave function is complex valued, only its relative phase and relative magnitude can be measured—its value does not, in isolation, tell anything about the magnitudes or directions of measurable observables; one has to apply quantum operators, whose eigenvalues correspond to sets of possible results of measurements, to the wave function ψ and calculate the statistical distributions for measurable quantities.

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  1. gn0m0n

    Studying 1D Particle in Potential V=-Fx: Energy Spectrum & Wavefunctions

    Homework Statement This is from an old exam I'm studying from. It goes: "A particle of mass m is traveling in one dimension under the influence of a potential V = -Fx where F is a known constant. Find the energy spectrum and wavefunctions. Hint: You may want to work in momentum...
  2. H

    Showing wavefunctions are orthonormal.

    Homework Statement I've attached the question as a jpeg. I'm having trouble showing that the wavefunctions are orthonormal (i.e. Orthogonal and normal) When I try to show U_210 is normal I don't get 1: My working: ∫ |U_210|² = 1 I set the limits from 0 to infinity for the...
  3. C

    Wavefunctions for Indistinguishable and Distinguishable particles -

    Wavefunctions for Indistinguishable and Distinguishable particles - URGENT Homework Statement A one-dimensional potential well has a set of single-particle energy eigenstates Un(x) with energies En=E_o n^2 where n=1,2,3... Two particles are placed in the well with three possible sets of...
  4. Kawakaze

    What is the wavelength of the emitted light in the infinite well problem?

    Homework Statement The mass of the particle in the infinite well is 2.00 × 10−30 kg, and the width of the well is 1.00 × 10−9 m. If the particle makes a transition from the third eigenstate to the second eigenstate, what will be the wavelength of the emitted light? Homework Equations...
  5. I

    Wavefunctions and boundaries of a 1D-potential well

    the attachment here shows a potential well and i am practicing writing down wave functions in each region and boundary conditions (for this problem I suppose the boundaries would be x= -a, 0, b. i think that for this problem i need 4 functions and i thought that they may be: when x<-a...
  6. K

    Calculating <x> and <p2> for Wavefunctions

    Homework Statement 1. I got the wavefunctions:\psi _0=(\frac{m\omega }{\pi\hbar})^{\frac{1}{4}}\cdot e^{-\frac{m\omega}{2\hbar}\cdot x^2}, and \psi _1=(\frac{m\omega }{\pi\hbar})^{\frac{1}{4}}\cdot \sqrt{\frac{2m\omega }{\hbar}}\cdot e^{-\frac{m\omega}{2\hbar}\cdot x^2}. Also recomended by...
  7. Q

    Antisymmetric wavefunctions for more than two particles

    I am having trouble understanding how a wavefunction for three or more particles can be totally antisymmetric. Does this just mean that the sign stays the same for even permutations of the indices, while the sign changes for odd permutations (i.e., is it just antisymmetric like a rank three tensor)?
  8. H

    Quantum Mechanics basiscs (confused about wavefunctions)

    Hello, we started Quantum Mechanics last semester, and somehow I manged to do most of the homework during that semester, but now I'm trying to revise it again, and I can't seem to understand the very basics of it, in particular about wavefunctions. Please read this carefully, because you might...
  9. G

    Electron and hole wavefunctions in a semiconductor QW

    Homework Statement I'm attempting to understand better how optical transitions occur in a QW (more specifically quantum cascade lasers) with and without an electric field. If an electron in the second excited state falls to the first, is it simply the transistion matrix between these two...
  10. Hepth

    How Do You Calculate Flavor-Spin Wavefunctions in Quantum Chromodynamics?

    I'm having a little trouble recreating some things from a paper and it is due to my lack of knowledge of working with Flavor-Spin wavefunctions. I'm trying to show that : \left\langle \Lambda \left|b_s^{\dagger }b_b\right|\Lambda _b\right\rangle =\frac{1}{\sqrt{3}} and \left\langle p...
  11. Z

    Fermions in bound states and their wavefunctions

    Hello all, This may be my very first post on Physics Forums. I am a 1st year physics grad student and need some help on something that's been bugging me. Suppose we have two spin half particles in a bound state. The total spin will either be 0 or 1. The spin 0 state, for example, would be...
  12. N

    QM: Spin-orbit and wavefunctions for H

    Homework Statement Hi all. I wish to evaluate the following dipole moment <1| x |2>, where |1> and |2> are stationary states of the hydrogen atom when one accounts for spin-orbit coupling. I am a little unsure of if I am allowed to use the "normal" unperturbed wavefunctions for...
  13. H

    Particle Wavefunctions

    A particle is described by the normalised wavefunction; $ \psi (x,y,z) = Ae^{- \alpha ( x^{2} + y^{2} + z^{2} ) }$ Find the probability that a particle is in a dr shell of space. For what value of r is the probability of finding this particle greatest, and is this the same r value...
  14. L

    Azimuthal Wavefunctions: Showing a constant must be an integer

    Homework Statement In spherical polars, the azimuthal part of the wavefunction of a particle is psi(phi) = 1/sqrt[2.pi] . exp[i.m.phi] where phi is the azimuthal angle. Show m must be an integer.Homework Equations I know you are supposed to have a good go at solving the problem first, but...
  15. G

    Frequency of light calculated from wavefunctions

    if you have a wavefunction for an electron in one orbital and another wavefunction for the same electron in another orbital and assuming that the electron transitions from the one to the other orbital how would you derive the frequency of the emitted light from the wavefunctions themselves...
  16. L

    What are orthogonal wavefunctions?

    I know what orthogonal means (well, I know orthogonal vectors are perpendicular to each other) but how can this be applied to a wavefunction? Thanks!
  17. S

    Multi-electron wavefunctions

    What is the basis to say that the wavefunction of a multi-electron system is the product of individual wavefunctions of the electrons that form the system? In other words, how does theory ensure that the multi-electron wavefunction is seperable into variables r1 and r2? Even in Hartree...
  18. E

    Probability Density for Wavefunctions undergoing phase shifts.

    Sorry for not using template but you should find everything in the image provided: Hey guys. All of the info for the problem is in a picture. I've tried working on this for ours and I still can't seem to get the trig identities right :(...
  19. N

    Is the Product of Two Normalized Wavefunctions Also Normalized?

    Homework Statement Hi all. If I have two normalized wavefunctions f and g, will their product fg also be a normalized wavefunction? Thanks in advance. Niles.
  20. N

    QM: Changing indices of wavefunctions

    Homework Statement Hi all. I am looking at a potential with two wells, where we denote the wells a and b. Now there are two electrons in this setup, which we label 1 and 2. I have the following innerproduct: \left\langle {\phi _b (x_1 )} \right|\left\langle {\phi _a (x_2 )}...
  21. N

    QM: Changing wavefunctions after measurements

    Homework Statement Hi all. My question is best illustrated with an example. Please, take a look: Let's say we have particle in a stationary state, so \Psi(x,0)=1\cdot \psi_{1,0}(x) with energy E_{1,0}. Now at time t=0 the Hamiltonian of this particle changes, since the particle gains some...
  22. Q

    Wavefunctions and probability-Proof

    Prove that the probability of finding a particle of mass m in a one-dimensional potential well of length L is 0.5 for both the first and second half of the well for the state with n = 2. Demonstrate that these results make sense in light of the form of the wavefunction for each case. Someone...
  23. F

    Spread fo wavefunctions - filling the universe?

    Wavefunctions spread with time, if the particle does not interact. Now, the universe is filled with particles that do not interact for thousands and millions of years, for example cosmic ray protons. This would mean most space in the universe is filled with wavefunctions, all...
  24. Q

    Do protons and neutrons have a wavefunctions?

    This might be a silly question, but do protons and neutrons have a wave function that they can be described by?
  25. M

    QM - Hydrogenic wavefunctions - normalization

    I just want to make sure I understand this point: The eigenfunctions of the hydrogenic Hamiltonian are \varphi_{nlm}=R_{nl}Y^{m}_{l} If I need to find the probability of finding the electron in the nucleus (in r<R0), and I use the normalized R_{nl}, can I simply calculate the integral...
  26. D

    QM Wavefunctions: Coefficient Expansion & Linear Combinations

    I found out the Coefficient expansion theorem and constructed the following wavefunction: Ψ(x,0) = 1/sqrt(2)*Φ1 + sqrt(2/5)*Φ3 + 1/sqrt(10)*Φ5 where φn = sqrt(2/a)*sin(n*pi*x/a) Is this unique why or why not? I'm thinking that it has something to do with all odd Energies. Also is...
  27. G

    Molecular orbital wavefunctions

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  28. W

    Confusion about eigenstates and wavefunctions.

    This is the way I understand it. Correct me if I'm wrong. A 'particle' in a given situation will be in a state |\psi>, which is determined by the Schrodinger Equation. After measurement, the particle will then go to a state |\omega>, where |\omega> is an eigenvector of the operator...
  29. E

    Stuck on 6.16: Solving for Wavefunctions in Different Regimes

    Homework Statement I am working on 6.16 at the following site: http://mikef.org/files/phys_4241_hw14.pdf I think that the solution given is given is wrong. I can get part a), however, I am just getting stuck on part b). So, the wavefunction in r < r_0 is R(r) = A/r sin(k_1*r) and the...
  30. K

    Probabilities for orthonormal wavefunctions

    Ok I have two orthonormal wavefunctions of a system, \psi 1 and \psi 2 and \widehat{A} is an observable such that \widehat{A} |\phi _{n} > = a_{n} |\phi _{n} > for eigenvalues a sub n what are the probabilities p1(a1) and p2(a2) of obtaining the value a sub n in the state |psi1> and...
  31. P

    What is the use of representing wavefunctions as an exponential?

    what is the use of representing wavefunctions say \psi(x,t)=A\cos(kx-\omega t) by \psi(x,t)=Ae^{i(kx-\omega t)} when we actually mean the real part
  32. C

    Are spinors just wavefunctions in the dirac field?

    are spinors just wavefunctions in the dirac field?
  33. E

    Orthogonality of momentum space wavefunctions

    Page 152 Robinett: Consider the (non-normalized) even momentum space wavefunctions for the symmetric well:, \phi_n^+(p) = 2sin(w-m)/(w-m)+sin(w+m)/(w+m) where w = sin((n-1/2)pi) and m = ap/hbar. Show that \int_{-\infty}^{\infty}\phi_n^+(p)^*\cdot \phi_n^+(p) dp = \delta_{n,m} The hint...
  34. cepheid

    Exploring Quantum Numbers & Wavefunctions in Fermi Gas

    Hi, I have a question about the discussion of the free-electron (Fermi) gas in my solid-state physics notes. In the free electron model, you basically have particles in a box, and the state of any particle is described by four quantum numbers, nx, ny, nz, and ms, the spin magnetic quantum...
  35. S

    Wavefunctions of fermions and bosons

    Homework Statement Consider two noninteracting particles p and q each with mass m in a cubical box od size a. Assume the energy of the particles is E = \frac{3 \hbar^2 \pi^2}{2ma^2} + \frac{6\hbar^2 pi^2}{2ma^2} Using the eigenfunctions \psi_{n_{x},n_{y},n_{z}} (x_{p},y_{p},z_{p}) and...
  36. S

    Transition amplitudes and relation between wavefunctions

    bb] The dipole transition amplitude for the transition (nlm) -> (n'l'm') is given by [/b] \int \psi_{n'l'm'}^* \vec{r} \psi_{nlm} d\tau Is the dipole transition amplitude simply a measure of how likely a certain transiton is?? Heres another question In converting \psi_{nlm_{l}m_{s}} =...
  37. M

    Anti-symmetric electron wavefunctions

    I'm reading Harrison's book on Solid State Theory, and he states without explanation that the many-particle wavefunction in a solid must be anti-symmetric with respect to exchange of any two electrons. I guess it may be obvious, but can someone explain why it's anti-symmetric?
  38. S

    Born Conditions on Wavefunctions

    Born's conditions for an acceptable "well-behaved" wavefunction F(x): 1. it must be finite everywhere, i.e. converge to 0 as x -> infinity 2. it must be single-valued 3. it must be a continuous function 4. and dF/dx must be continuous. I'm having difficulty understanding the last...
  39. resurgance2001

    Eigenfunctions versus wavefunctions

    Hi - hope that someone can help me with this. I am new to quantum mechanics - trying to answer a question about eigenfunctions and don't have a decent textbook at the moment. Can someone tell me please, what is the difference between a wavefunction and an eigenfunction for a particle in an...
  40. E

    Exploring Wavefunctions in Cloud Chamber Experiments

    On a recent thread about cloud chambers, a question popped into my head. My knowledge of cloud chambers is that one can see the "path" of certain elementary particles as they pass through the chamber. If, say, we had an electron passing through the chamber, do we have to assume that the...
  41. Z

    About wavefunctions of Hydrogen atom

    Every one knows that wavefunctions are generally complex functions described by three quantum numbers n, l and m, and the number m is included in the form exp(i*m*fai). But here in the following webpage they are all real functions, I'm confused:confused: . Can anyone help me? Thank u in advance!
  42. E

    Are state vectors and wavefunctions the same?

    Hi, State vectors ("kets") live in Hilbert space. Do wavefunctions also live in Hilbert space? I've read that they both do, but how can functions and vectors reside in the same space? Or do wave functions simply map from coordinate space to Hilbert space...
  43. E

    Symmetric and Anti-Symmetric Wavefunctions

    I am not sure if my title to this thread is appropriate for the question I am about to ask, but it is what we are currently studying in my Quantum Mechanics class so here it goes. Two non-interacting particles with mass m, are in 1-d potential which is zero along a length 2a and infinite...
  44. Y

    Two distinguishable particles space-spin wavefunctions

    Hi! Two (distinguishable) non-interacting electrons are in an infinite square well with hard walls at x=0 and x=a, so that the one particle states are \phi_n(x)=\sqrt{\frac{2}{a}} sin(\frac{n\pi}{a}x), E_n=n^2K where K=\pi^2\hbar^2/(2ma^2) My question is what are the spins and space-spin...
  45. P

    Wavefunctions space in Quantum Physics

    Well, a week ago my Professor said the space of quantum physical states was a Hilbert space. Thing is, he just said it, and moved on. So I have a vector space with a scalar product. Is it, indeed, Hilbert? That is, is it complete? I guess I'll see the answer next semester, in real functions...
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