Jin Wang
University of Michigan
30 Papers
250 Citations
Jin Wang is an academic researcher from University of Michigan. The author has contributed to research in topics: Quantum entanglement & Quantum decoherence. The author has an hindex of 11, co-authored 30 publications. Previous affiliations of Jin Wang include University of Queensland & Griffith University.
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Papers
Dynamical Creation of Entanglement by Homodyne-Mediated Feedback
Jin Wang,Anthony F. Starace,Howard M. Wiseman,Gerard J. Milburn +3 more
- 01 May 2004
TL;DR: Schneider et al. as mentioned in this paper used homodyne-mediated feedback to increase the steady state entanglement of two-level atoms coupled to a single Bosonic mode that is driven and heavily damped.
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Entanglement Evolution in the Presence of Decoherence
TL;DR: In this paper, the entanglement of two qubits, each defined as an effective two-level, spin 1/2 system, is investigated for the case that the qubits interact via a Heisenberg XY interaction and are subject to decoherence due to population relaxation and thermal effects.
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Towards feedback control of entanglement
Stefano Mancini,Jin Wang +1 more
TL;DR: A model to investigate feedback control of entanglement which consists of two distant atoms which interact through a radiation field and becomes entangled is provided and the possibility to stabilize such entangling against atomic decay by means of a feedback action is shown.
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•Journal Article
Entanglement Evolution in the Presence of Decoherence
TL;DR: In this paper, the entanglement of two qubits, each defined as an effective two-level spin 1/2 system, is investigated for the case that the qubits interact via a Heisenberg XY interaction and are subject to decoherence due to population relaxation and thermal effects.
51
Towards feedback control of entanglement
Stefano Mancini,Jin Wang +1 more
TL;DR: In this paper, the authors provide a model to investigate feedback control of entanglement, which consists of two distant (two-level) atoms which interact through a radiation field and becomes entangled.
47