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Pierre-Francois Loos 2019-04-06 20:25:34 +02:00
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@ -482,7 +482,7 @@ and ensuring that $\w{}{\lr,\rsmu{}{}}(\br{1},\br{2})$ and $\W{\wf{}{\Bas}}{}(\b
\label{eq:mu_of_r} \label{eq:mu_of_r}
\rsmu{\wf{}{\Bas}}{}(\br{}) = \frac{\sqrt{\pi}}{2} \W{\wf{}{\Bas}}{}(\bx{},\Bar{\bx{}}), \rsmu{\wf{}{\Bas}}{}(\br{}) = \frac{\sqrt{\pi}}{2} \W{\wf{}{\Bas}}{}(\bx{},\Bar{\bx{}}),
\end{equation} \end{equation}
where $(\bx{},\Bar{\bx{}})$ represents a couple of same-spin electrons at the same position $\br{}$. where $(\bx{},\Bar{\bx{}})$ represents a couple of opposite-spin electrons at the same position $\br{}$.
%More precisely, if we define the value of the interaction at coalescence as %More precisely, if we define the value of the interaction at coalescence as
%\begin{equation} %\begin{equation}
% \label{eq:def_wcoal} % \label{eq:def_wcoal}

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