Investigating macroscopic quantum superpositions and the quantum-to-classical transition by optical parametric amplification
arXiv:1202.5518 · doi:10.1103/RevModPhys.84.1765
Abstract
The present work reports on an extended research endeavor focused on the theoretical and experimental realization of a macroscopic quantum superposition (MQS) made up with photons. As it is well known, this intriguing, fundamental quantum condition is at the core of a famous argument conceived by Erwin Schroedinger, back in 1935. The main experimental challenge to the actual realization of this object resides generally on the unavoidable and uncontrolled interactions with the environment, i.e. the decoherence leading to the cancellation of any evidence of the quantum features associated with the macroscopic system. The present scheme is based on a nonlinear process, the "quantum injected optical parametric amplification", that maps by a linearized cloning process the quantum coherence of a single - particle state, i.e. a Micro - qubit, into a Macro - qubit, consisting in a large number M of photons in quantum superposition. Since the adopted scheme was found resilient to decoherence, the MQS\ demonstration was carried out experimentally at room temperature with . This result elicited an extended study on quantum cloning, quantum amplification and quantum decoherence. The related theory is outlined in the article where several experiments are reviewed such as the test on the "no-signaling theorem" and the dynamical interaction of the photon MQS with a Bose-Einstein condensate. In addition, the consideration of the Micro - Macro entanglement regime is extended into the Macro - Macro condition. The MQS interference patterns for large M were revealed in the experiment and the bipartite Micro-Macro entanglement was also demonstrated for a limited number of generated particles: . At last, the perspectives opened by this new method are considered in the view of further studies on quantum foundations and quantum measurement.
26 pages, 17 figures
References in corpus (36)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- General framework for estimating the ultimate precision limit in noisy quantum-enhanced metrology
- Quantum Optical Metrology -- The Lowdown on High-N00N States
- Experimental entanglement of six photons in graph states
- Optimal Quantum Phase Estimation
- Research on Hidden Variable Theories: a review of recent progresses
- Entangled Fock states for Robust Quantum Optical Metrology, Imaging, and Sensing
- Optimal quantum cloning of orbital angular momentum photon qubits via Hong-Ou-Mandel coalescence
- The conditions for quantum violation of macroscopic realism
- Quantum entanglement of a large number of photons
- Qubit metrology and decoherence
- Quantification of Macroscopic Quantum Superpositions within Phase Space
- Schroedinger Cat: Entanglement test in a Micro-Macroscopic system
- Experimental observation of an entire family of four-photon entangled states
- Loss-Induced Limits to Phase Measurement Precision with Maximally Entangled States
- Experimental optimal cloning of four-dimensional quantum states of photons
- A measurement-based measure of the size of macroscopic quantum superpositions
- Measuring the size of a Schroedinger cat state
- Quantum experiments with human eyes as detectors based on cloning via stimulated emission
- Failure of Local Realism Revealed by Extremely Coarse-Grained Measurements
- Coarse Graining Makes It Hard to See Micro-Macro Entanglement
- Quantum state discrimination: a geometric approach
- Experimental macroscopic coherence by phase-covariant cloning of a single photon
- Experimental amplification of an entangled photon: what if the detection loophole is ignored?
- Quantum to classical transition via fuzzy measurements on high gain spontaneous parametric down-conversion
- Testing quantum nonlocality by generalized quasiprobability functions
- Enhanced Resolution of Lossy Interferometry by Coherent Amplification of Single Photons
- Robust strategies for lossy quantum interferometry
- Entanglement criteria for microscopic-macroscopic systems
- Implementation of optimal phase-covariant cloning machines
- Testing a Bell inequality in multi-pair scenarios
- Proposal for Inverting the Quantum Cloning of Photons
- Bell Inequality Tests with Macroscopic Entangled States of Light
- Experimental test of the no signaling theorem
- Entanglement, EPR correlations and mesoscopic quantum superposition by the high-gain quantum injected parametric amplification
Cited by in corpus (19)
- Macroscopic quantum states: measures, fragility and implementations
- Optomechanical sensing of spontaneous wave-function collapse
- Quantum Cloning Machines and the Applications
- Displacing entanglement back and forth between the micro and macro domains
- Discriminating the effects of collapse models from environmental diffusion with levitated nanospheres
- Macroscopic non-classical state preparation via post-selection
- Cloning of Quantum Entanglement
- Preparing macroscopic mechanical quantum superpositions via photon detection
- Efficient Amplification of Photonic Qubits by Optimal Quantum Cloning
- Multipartite entanglement dynamics in a cavity
- Optimal asymptotic cloning machines
- Spatial light mode analogues of generalized quantum coherent states
- Dissipation-induced enhancement and squeezing of quantum fluctuations
- Probing, Quantifying and Freezing Coherence in a Thermal Ensemble of Atoms
- Fluctuation-induced Forces on Nanospheres in External Fields
- Remotely preparing optical Schrödinger cat states via homodyne detection in nondegenerate triple-photon spontaneous downconversion
- Observation of anomalous classical-to-quantum transitions in many-body systems
- Assisted Macroscopic Quantumness
- Coherence Based Characterization of Macroscopic Quantumness