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Momentum operators

The Flamiltonian commutes widi the angular momentum operator as well as that for the square of the angular momentum I . The wavefiinctions above are also eigenfiinctions of these operators, with eigenvalues tndi li-zland It should be emphasized that the total angular momentum is L = //(/ + )/j,... [Pg.23]

Electrons and most other fiindamental particles have two distinct spin wavefunctions that are degenerate in the absence of an external magnetic field. Associated with these are two abstract states which are eigenfiinctions of the intrinsic spin angular momentum operator S... [Pg.28]

We consider an isolated molecule in field-free space with Hamiltonian //. We let Pbe the total angular momentum operator of the molecule, that is... [Pg.138]

From the definition of the translational linear momentum operator / (in (eqnation Al.4,97)) we see that... [Pg.164]

In the presence of a phase factor, the momentum operator (P), which is expressed in hyperspherical coordinates, should be replaced [53,54] by (P — h. /r ) where VB creates the vector potential in order to define the effective Hamiltonian (see Appendix C). It is important to note that the angle entering the vector potential is shictly only identical to the hyperangle <]> for an A3 system. [Pg.53]

In order to incorporate the geometric phase effect in a formulation based on an expansion in G-H basis functions we need to consider the operation of the momentum operator on a basis function, that is, to evaluate terms as... [Pg.76]

P, Jy, and J , are the components of the total orbital angular momentum J of the nuclei in the IX frame. The Euler angles a%, b, cx appear only in the P, P and P angular momentum operators. Since the results of their operation on Wigner rotation functions are known, we do not need then explicit expressions in temis of the partial derivatives of those Euler angles. [Pg.208]

In these equations, J and M are quantum numbers associated with the angular momentum operators and J, respectively. The number II = 0, 1 is a parity quantum number that specifies the symmetry or antisymmetry of the column vector with respect to the inversion of the nuclei through G. Note that the same parity quantum number II appears for and Also, the... [Pg.210]

Now, consider the case of spinless particles not subject to external electronic and magnetic fields. We may now choose the unitai7 operator U as the unit operator, that is, T = K. For the coordinate and momentum operators, one then obtains... [Pg.616]

As a result, the orbital agular momentum operator satisfies the relation... [Pg.616]

It should be mentioned that if two operators do not commute, they may still have some eigenfunctions in common, but they will not have a complete set of simultaneous eigenfunctions. For example, the and Lx components of the angular momentum operator do not commute however, a wavefunction with L=0 (i.e., an S-state) is an eigenfunction of both operators. [Pg.47]

In exereise 7 above you determined whether or not many of the angular momentum operators eommute. Now, examine the operators below along with an appropriate given funetion. Determine if the given funetion is simultaneously an eigenfunetion of both operators. Is this what you expeeted ... [Pg.77]

The components of the quantum mechanical angular momentum operators along the three principal axes are ... [Pg.345]

The angles 0, (j), and x are the Euler angles needed to specify the orientation of the rigid molecule relative to a laboratory-fixed coordinate system. The corresponding square of the total angular momentum operator fl can be obtained as... [Pg.345]

When the three principal moment of inertia values are identical, the molecule is termed a spherical top. In this case, the total rotational energy can be expressed in terms of the total angular momentum operator J2... [Pg.346]

Again, the rotational kinetic energy, which is the full rotational Hamiltonian, can be written in terms of the total rotational angular momentum operator J2 and the component of angular momentum along the axis with the unique principal moment of inertia ... [Pg.347]


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Angular momenta operator matrix elements

Angular momenta operator table

Angular momentum integral operator

Angular momentum lowering operators

Angular momentum operator, symmetry

Angular momentum operators

Angular momentum operators for

Angular momentum quantum-mechanical operators

Angular momentum raising operator

Canonical momentum operator

Commutation relations angular momentum operators

Commutation relations orbital angular-momentum operators

Commutation rules angular momentum operators

Coordinate and momentum operators

Electron momentum operator

Gauge-invariant momentum operators

Generalized momentum operator

Hermiticity momentum operator

Ladder operators for generalized angular momentum

Ladder operators for spin angular momentum

Linear momentum operator

Momentum and Energy Operators

Momentum kinematic operator

Momentum operator quantum mechanical

Momentum operator rotation

Momentum operator space representation

Momentum shift operator

Momentum space eigenvectors of the Dirac operator

Momentum, angular, conservation operator

Momentum, operator for

Operator angular momentum squared

Operator for generalized angular momentum

Operator for orbital angular momentum

Operator for spin angular momentum

Operator radial momentum

Operator total electronic angular momentum

Operators, angular momenta Hamiltonian

Operators, angular momenta Hermitian

Operators, angular momenta commuting

Operators, angular momenta electron spin

Operators, angular momenta linear

Operators, angular momenta magnetic moment

Orbital angular momentum ladder operators

Orbital angular momentum operations

Orbital angular momentum operators

Orbital angular momentum operators in spherical polar coordinates

Rotational angular momentum operators

Spin angular momentum ladder operators

Spin angular momentum operators

The Ladder-Operator Method for Angular Momentum

The Total Angular Momentum Operator

Theorem momentum operator

Total angular momentum operator

Total orbital angular momentum operator

Total spin angular momentum operator

Vibronic angular momentum operator

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