English

Demonstration of entanglement-by-measurement of solid state qubits

Quantum Physics 2013-01-01 v1 Mesoscale and Nanoscale Physics

Abstract

Projective measurements are a powerful tool for manipulating quantum states. In particular, a set of qubits can be entangled by measurement of a joint property such as qubit parity. These joint measurements do not require a direct interaction between qubits and therefore provide a unique resource for quantum information processing with well-isolated qubits. Numerous schemes for entanglement-by-measurement of solid-state qubits have been proposed, but the demanding experimental requirements have so far hindered implementations. Here we realize a two-qubit parity measurement on nuclear spins in diamond by exploiting the electron spin of a nitrogen-vacancy center as readout ancilla. The measurement enables us to project the initially uncorrelated nuclear spins into maximally entangled states. By combining this entanglement with high-fidelity single-shot readout we demonstrate the first violation of Bells inequality with solid-state spins. These results open the door to a new class of experiments in which projective measurements are used to create, protect and manipulate entanglement between solid-state qubits.

Keywords

Cite

@article{arxiv.1206.2031,
  title  = {Demonstration of entanglement-by-measurement of solid state qubits},
  author = {Wolfgang Pfaff and Tim H. Taminiau and Lucio Robledo and Hannes Bernien and Matthew L. Markham and Daniel J. Twitchen and Ronald Hanson},
  journal= {arXiv preprint arXiv:1206.2031},
  year   = {2013}
}

Comments

6 pages, 4 figures