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One version of the energy-time uncertainty principle states that the minimum time $T_{\perp}$ for a quantum system to evolve from a given state to any orthogonal state is $h/(4 \Delta E)$ where $\Delta E$ is the energy uncertainty.
The uncertainty relation between energy and time in nonrelativistic quantum mechanics
L. Mandelstam and I. Tamm · 1945
Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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