Phy5645/schrodingerequationhomework2: Difference between revisions

By definition:

${\displaystyle {\frac {\partial \rho }{\partial t}}={\frac {\partial }{\partial t}}\sum _{i}\rho _{i}({\overrightarrow {r}},t)}$

${\displaystyle =\sum _{i}\int \cdots \int d^{3}r_{1}\cdots d^{3}r_{i-1}d^{3}r_{i+1}\cdots d^{3}r_{N}(\Psi ^{\star }{\frac {\partial \Psi }{\partial t}}+{\frac {\partial \Psi ^{\star }}{\partial t}}\Psi )}$

${\displaystyle =\sum _{i}\rho _{i}({\overrightarrow {r_{i}}},t)\quad (1)}$

The wave function of many particles system ${\displaystyle \Psi ({\overrightarrow {r_{1}}}{\overrightarrow {r_{2}}}\cdots {\overrightarrow {r_{N}}},t)}$ satisfies the Schrodinger equation for many particles system:

${\displaystyle {\begin{cases}i\hbar {\frac {\partial \Psi }{\partial t}}=\sum _{k}(-{\frac {\hbar ^{2}}{2m}}\nabla ^{2})\Psi +\sum _{jk}v_{jk}\Psi \\-i\hbar {\frac {\partial \Psi ^{\star }}{\partial t}}=\sum _{k}(-{\frac {\hbar ^{2}}{2m}}\nabla _{k}^{2})\Psi ^{\star }+\sum _{jk}v_{jk}\Psi ^{\star }\end{cases}}}$

Substitute ${\displaystyle {\frac {\partial \Psi }{\partial t}}}$ and ${\displaystyle {\frac {\partial \Psi ^{\star }}{\partial t}}}$ in to formula ${\displaystyle (1)}$, we get:

${\displaystyle {\frac {\partial \rho _{i}}{\partial t}}=-\int \cdots \int d^{3}r_{1}\cdots d^{3}r_{i-1}d^{3}r_{i+1}\cdots d^{3}r_{N}\cdot \sum _{k}{\frac {\hbar }{2im}}(\Psi ^{\star }\nabla _{k}^{2}\Psi -\Psi \nabla _{k}^{2}\Psi ^{\star })}$

${\displaystyle =-\int \cdots \int d^{3}r_{1}\cdots d^{3}r_{i-1}d^{3}r_{i+1}\cdots d^{3}r_{N}\cdot \sum _{k}{\frac {\hbar }{2im}}\nabla _{k}\cdot (\Psi ^{\star }\nabla _{k}\Psi -\Psi \nabla _{k}\Psi ^{\star })}$

We can also have:

${\displaystyle \nabla \cdot {\overrightarrow {j}}\equiv \sum _{i}\nabla _{i}\cdot \sum _{i}j_{i}({\overrightarrow {r_{i}}},t)}$

${\displaystyle =\nabla _{1}\cdot {\overrightarrow {j_{1}}}({\overrightarrow {r_{1}}},t)+\nabla _{2}\cdot {\overrightarrow {j_{2}}}({\overrightarrow {r_{2}}},t)+\cdots \nabla _{i}\cdot {\overrightarrow {j_{i}}}({\overrightarrow {r_{i}}},t)\cdots }$

${\displaystyle =\sum _{i}\nabla _{i}\cdot {\overrightarrow {j_{i}}}({\overrightarrow {r_{i}}},t)}$

${\displaystyle ={\frac {\hbar }{2im}}\sum _{i}\int \cdots \int d^{3}r_{1}\cdots d^{3}r_{i-1}d^{3}r_{i+1}\cdots d^{3}r_{N}\times \nabla _{i}\cdot (\Psi ^{\star }\nabla _{i}\Psi -\Psi \nabla _{i}\Psi ^{\star })\quad (2)}$

${\displaystyle {\frac {\partial \rho }{\partial t}}=\sum _{i}{\frac {\partial \rho }{\partial t}}=\sum _{i}\int \cdots \int d^{3}r_{1}\cdots d^{3}r_{i-1}d^{3}r_{i+1}\cdots d^{3}r_{N}\times \sum _{k}{\frac {\hbar }{2im}}\nabla _{k}\cdot (\Psi ^{\star }\nabla _{k}\Psi -\Psi \nabla _{k}\Psi ^{\star })(3)}$

Combine the sum over in equation ${\displaystyle (3)}$, we find that the terms for ${\displaystyle i\neq k}$ do not exist any more, so equation ${\displaystyle (2)}$ is the same as equation ${\displaystyle (3)}$, so we get ${\displaystyle {\frac {\partial \rho }{\partial t}}+\nabla \cdot {\overrightarrow {j}}=0}$

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