Question
Explain the term “Stationary State” in the context of the Schrödinger amplitude
function.
Answer :
Word Count : 235
In quantum chemistry, a stationary state is a quantum state in which the probability distribution of finding a particle at different positions remains unchanged with time. It is represented by a wavefunction that is an eigenfunction of the time-independent Schrödinger equation: [ \hat{H}\psi = E\psi ] where (\hat{H}) is the Hamiltonian operator, (\psi) is the Schrödinger amplitude function ______ ____ _________ __________ ________ _______ ____ ___ _________ __________.
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In quantum chemistry, a stationary state is a quantum state in which the probability distribution of finding a particle at different positions remains unchanged with time. It is represented by a wavefunction that is an eigenfunction of the time-independent Schrödinger equation: [ \hat{H}\psi = E\psi ] where (\hat{H}) is the Hamiltonian operator, (\psi) is the Schrödinger amplitude function ______ ____ _________ __________ ________ _______ ____ ___ _________ __________.
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