Preparation and characterization of arbitrary states of four-dimensional qudits based on biphotons
arXiv:0804.3327 · doi:10.1103/PhysRevA.78.042321
Abstract
We report interferometric schemes to prepare arbitrary states of four-dimensional qudits (ququarts) based on biphoton states of ultrafast-pumped frequency-nondegenerate spontaneous parametric down-conversion. Preparation and tomographic characterization of a few examples of general single-ququart states, a pure state, a completely mixed state, and a partially-mixed state, are experimentally demonstrated.
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Cited by in corpus (5)
- Experimental generation and characterization of single-photon hybrid ququarts based on polarization-orbital angular momentum encoding
- Universal quantum computing with qubits embedded in trapped-ion qudits
- Limits to multipartite entanglement generation with bosons and fermions
- On Preparing Entangled Pairs of Polarization Qubits in the Frequency Non-Degenerate Regime
- Transpiling quantum assembly language circuits to a qudit form