--- title: "Interaction picture" firstLetter: "I" publishDate: 2021-09-13 categories: - Physics - Quantum mechanics date: 2021-09-09T21:15:37+02:00 draft: false markup: pandoc --- # Interaction picture The **interaction picture** or **Dirac picture** is an alternative formulation of quantum mechanics, equivalent to both the Schrödinger picture and the [Heisenberg picture](/know/concept/heisenberg-picture/). Recall that Schrödinger lets states $\ket{\psi_S(t)}$ evolve in time, but keeps operators $\hat{L}_S$ fixed (except for explicit time dependence). Meanwhile, Heisenberg keeps states $\ket{\psi_H}$ fixed, and puts all time dependence on the operators $\hat{L}_H(t)$. However, in the interaction picture, both the states $\ket{\psi_I(t)}$ and the operators $\hat{L}_I(t)$ evolve in $t$. This might seem unnecessarily complicated, but it turns out be convenient when considering a time-dependent "perturbation" $\hat{H}_{1,S}$ to a time-independent Hamiltonian $\hat{H}_{0,S}$: $$\begin{aligned} \hat{H}_S(t) = \hat{H}_{0,S} + \hat{H}_{1,S}(t) \end{aligned}$$ With $\hat{H}_S(t)$ the full Schrödinger Hamiltonian. We define the unitary conversion operator: $$\begin{aligned} \boxed{ \hat{U}(t) \equiv \exp\!\bigg( i \frac{\hat{H}_{0,S} t}{\hbar} \bigg) } \end{aligned}$$ The interaction-picture states $\ket{\psi_I(t)}$ and operators $\hat{L}_I(t)$ are then defined to be: $$\begin{aligned} \boxed{ \ket{\psi_I(t)} \equiv \hat{U}(t) \ket{\psi_S(t)} \qquad \hat{L}_I(t) \equiv \hat{U}(t) \: \hat{L}_S(t) \: \hat{U}{}^\dagger(t) } \end{aligned}$$ ## Equations of motion To find the equation of motion for $\ket{\psi_I(t)}$, we differentiate it and multiply by $i \hbar$: $$\begin{aligned} i \hbar \dv{t} \ket{\psi_I} &= i \hbar \Big( \dv{\hat{U}}{t} \ket{\psi_S} + \hat{U} \dv{t} \ket{\psi_S} \Big) \\ &= i \hbar \Big( i \frac{\hat{H}_{0,S}}{\hbar} \Big) \hat{U} \ket{\psi_S} + \hat{U} \Big( i \hbar \dv{t} \ket{\psi_S} \Big) \end{aligned}$$ We insert the Schrödinger equation into the second term, and use $\comm*{\hat{U}}{\hat{H}_{0,S}} = 0$: $$\begin{aligned} i \hbar \dv{t} \ket{\psi_I} &= - \hat{H}_{0,S} \hat{U} \ket{\psi_S} + \hat{U} \hat{H}_S \ket{\psi_S} \\ &= \hat{U} \big( \!-\! \hat{H}_{0,S} + \hat{H}_S \big) \ket{\psi_S} \\ &= \hat{U} \big( \hat{H}_{1,S} \big) \hat{U}{}^\dagger \hat{U} \ket{\psi_S} \end{aligned}$$ Which leads to an analogue of the Schrödinger equation, with $\hat{H}_{1,I} = \hat{U} \hat{H}_{1,S} \hat{U}{}^\dagger$: $$\begin{aligned} \boxed{ i \hbar \dv{t} \ket{\psi_I(t)} = \hat{H}_{1,I}(t) \ket{\psi_I(t)} } \end{aligned}$$ Next, we do the same with an operator $\hat{L}_I$ to find a description of its evolution in time: $$\begin{aligned} \dv{t} \hat{L}_I &= \dv{\hat{U}}{t} \hat{L}_S \hat{U}{}^\dagger + \hat{U} \hat{L}_S \dv{\hat{U}{}^\dagger}{t} + \hat{U} \dv{\hat{L}_S}{t} \hat{U}{}^\dagger \\ &= \frac{i}{\hbar} \hat{U} \hat{H}_{0,S} \big( \hat{U}{}^\dagger \hat{U} \big) \hat{L}_S \hat{U}{}^\dagger - \frac{i}{\hbar} \hat{U} \hat{L}_S \big( \hat{U}{}^\dagger \hat{U} \big) \hat{H}_{0,S} \hat{U}{}^\dagger + \Big( \dv{\hat{L}_S}{t} \Big)_I \\ &= \frac{i}{\hbar} \hat{H}_{0,I} \hat{L}_I - \frac{i}{\hbar} \hat{L}_I \hat{H}_{0,I} + \Big( \dv{\hat{L}_S}{t} \Big)_I = \frac{i}{\hbar} \comm*{\hat{H}_{0,I}}{\hat{L}_I} + \Big( \dv{\hat{L}_S}{t} \Big)_I \end{aligned}$$ The result is analogous to the equation of motion in the Heisenberg picture: $$\begin{aligned} \boxed{ \dv{t} \hat{L}_I(t) = \frac{i}{\hbar} \comm*{\hat{H}_{0,I}(t)}{\hat{L}_I(t)} + \Big( \dv{t} \hat{L}_S(t) \Big)_I } \end{aligned}$$ ## Time evolution operator Recall that an alternative form of the Schrödinger equation is as follows, where a **time evolution operator** or **generator of translations in time** $K_S(t, t_0)$ brings $\ket{\psi_S}$ from time $t_0$ to $t$: $$\begin{aligned} \ket{\psi_S(t)} = \hat{K}_S(t, t_0) \ket{\psi_S(t_0)} \qquad \quad \hat{K}_S(t, t_0) \equiv \exp\!\Big( \!-\! i \frac{\hat{H}_S (t - t_0)}{\hbar} \Big) \end{aligned}$$ We want to find an analogous operator in the interaction picture, satisfying: $$\begin{aligned} \ket{\psi_I(t)} \equiv \hat{K}_I(t, t_0) \ket{\psi_I(t_0)} \end{aligned}$$ Inserting this definition into the equation of motion for $\ket{\psi_I}$ yields an equation for $\hat{K}_I$, with the logical boundary condition $\hat{K}_I(t_0, t_0) = 1$: $$\begin{aligned} i \hbar \dv{t} \Big( \hat{K}_I(t, t_0) \ket{\psi_I(t_0)} \Big) &= \hat{H}_{1,I}(t) \Big( \hat{K}_I(t, t_0) \ket{\psi_I(t_0)} \Big) \\ i \hbar \dv{t} \hat{K}_I(t, t_0) &= \hat{H}_{1,I}(t) \hat{K}_I(t, t_0) \end{aligned}$$ We turn this into an integral equation by integrating both sides from $t_0$ to $t$: $$\begin{aligned} i \hbar \int_{t_0}^t \dv{t'} K_I(t', t_0) \dd{t'} = \int_{t_0}^t \hat{H}_{1,I}(t') \hat{K}_I(t', t_0) \dd{t'} \end{aligned}$$ After evaluating the left integral, we see an expression for $\hat{K}_I$ as a function of $\hat{K}_I$ itself: $$\begin{aligned} K_I(t, t_0) = 1 + \frac{1}{i \hbar} \int_{t_0}^t \hat{H}_{1,I}(t') \hat{K}_I(t', t_0) \dd{t'} \end{aligned}$$ By recursively inserting $\hat{K}_I$ once, we get a longer expression, still with $\hat{K}_I$ on both sides: $$\begin{aligned} K_I(t, t_0) = 1 + \frac{1}{i \hbar} \int_{t_0}^t \hat{H}_{1,I}(t') \dd{t'} + \frac{1}{(i \hbar)^2} \int_{t_0}^t \hat{H}_{1,I}(t') \int_{t_0}^{t'} \hat{H}_{1,I}(t'') \hat{K}_I(t'', t_0) \dd{t''} \dd{t'} \end{aligned}$$ And so on. Note the ordering of the integrals and integrands: upon closer inspection, we see that the $n$th term is a [time-ordered product](/know/concept/time-ordered-product/) $\mathcal{T}$ of $n$ factors $\hat{H}_{1,I}$: $$\begin{aligned} \hat{K}_I(t, t_0) &= 1 + \int_{t_0}^t \hat{H}_{1,I}(t_1) \dd{t_1} + \frac{1}{2} \int_{t_0}^{t} \int_{t_0}^{t_1} \mathcal{T} \Big\{ \hat{H}_{1,I}(t_1) \hat{H}_{1,I}(t_2) \Big\} \dd{t_1} \dd{t_2} + \: ... \\ &= 1 + \sum_{n = 1}^\infty \frac{1}{n!} \frac{1}{(i \hbar)^n} \int_{t_0}^{t} \cdots \int_{t_0}^{t_n} \mathcal{T} \Big\{ \hat{H}_{1,I}(t_1) \cdots \hat{H}_{1,I}(t_n) \Big\} \dd{t_1} \cdots \dd{t_n} \\ &= \sum_{n = 0}^\infty \frac{1}{n!} \frac{1}{(i \hbar)^n} \mathcal{T} \bigg\{ \bigg( \int_{t_0}^{t} \hat{H}_{1,I}(t') \dd{t'} \bigg)^n \bigg\} \end{aligned}$$ Here, we recognize the Taylor expansion of $\exp$, leading us to a final expression for $\hat{K}_I$: $$\begin{aligned} \boxed{ \hat{K}_I(t, t_0) = \mathcal{T} \bigg\{ \exp\!\bigg( \frac{1}{i \hbar} \int_{t_0}^t \hat{H}_{1,I}(t') \dd{t'} \bigg) \bigg\} } \end{aligned}$$ ## References 1. H. Bruus, K. Flensberg, *Many-body quantum theory in condensed matter physics*, 2016, Oxford.