Measuring high-dimensional orbital angular momentum quantum states in mutually unbiased bases
Daniel Giovannini, Jacquiline Romero, Jonathan Leach, Angela Dudley, Andrew Forbes, Miles J. Padgett
Abstract
Daniel Giovannini, Jacquiline Romero, Jonathan Leach, Angela Dudley, Andrew Forbes, Miles J. Padgett
Abstract
Measurements in mutually unbiased bases (MUBs) are integral to quantum science. An underlying principle of a set of MUBs is that a measurement in one such basis provides no information about a measurement in one of the others. This feature is especially relevant for quantum key distribution. We perform a complete set of mutually unbiased measurements for high-dimensional orbital angular momentum (OAM) states of light. For a two-photon entangled state we show that specific joint measurements provide the minimum number of experimental settings required to characterize the quantum state. From these measurements we reconstruct the density matrix describing the high-dimensional two-photon entangled state. The experimental procedure that we outline can be applied to many different multipartite and high-dimensional systems.
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Measurements in mutually unbiased bases (MUBs) are integral to quantum science. An underlying principle of a set of MUBs is that a measurement in one such basis provides no information about a measurement in one of the others. This feature is especially relevant for quantum key distribution. We perform a complete set of mutually unbiased measurements for high-dimensional orbital angular momentum (OAM) states of light. For a two-photon entangled state we show that specific joint measurements provide the minimum number of experimental settings required to characterize the quantum state. From these measurements we reconstruct the density matrix describing the high-dimensional two-photon entangled state. The experimental procedure that we outline can be applied to many different multipartite and high-dimensional systems.
Key concepts: Mutually unbiased bases, Physics, Multipartite, Angular momentum, Photon, Quantum tomography, Quantum state, Quantum mechanics