Manipulation of photons in a cavity by dispersive atom-field coupling: Quantum-nondemolition measurements and generation of ‘‘Schrödinger cat’’ states
Манипулирование фотонами в cavity посредством дисперсионной связи атом–поле: квантовые измерения без разрушения и генерация состояний «кота Шрёдингера»
1992-04-01
SCID: 54.1/9s7xwa9m
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Fock statesSchrödinger cat statescavity quantum electrodynamicsdispersive atom-field couplingquantum nondemolition measurement
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Abstract (AI)
A quantum-nondemolition method to measure the number of photons stored in a high-Q cavity, introduced by Brune et al. [Phys. Rev. Lett. 65, 976 (1990)], is described in detail. It is based on the detection of the dispersive phase shift produced by the field on the wave function of nonresonant atoms crossing the cavity. This shift can be measured by atomic interferometry, using the Ramsey separated-oscillatory-field method. The information acquired by detecting a sequence of atoms modifies the field step by step, until it eventually collapses into a Fock state. At the same time, the field phase undergoes a diffusive process as a result of the back action of the measurement on the photon-number conjugate variable. Once a Fock state has been generated, its evolution under weak perturbation can be continuously monitored, revealing quantum jumps between various photon numbers. When applied to an initial coherent field, the intermediate steps of the measuring sequence produce quantum superpositions of classical fields, known as ``Schr\"odinger cat states.'' Ways to prepare and detect these states in a cavity subjected to a weak relaxation process are discussed. The effects analyzed in this article could realistically be observed by using circular Rydberg atoms and very high-Q superconducting microwave cavities. The possibility of photon ``manipulation'' through nonresonant atom-field interactions opens a domain in cavity QED studies.
Key Findings
1
A quantum-nondemolition photon-number measurement is achieved by detecting dispersive phase shifts imparted to nonresonant atoms crossing a high-Q cavity.
2
Applying the measurement sequence to a coherent field generates intermediate superpositions of distinct classical fields, or Schrödinger cat states, whose preparation and detection remain feasible under weak relaxation.
3
Continuous monitoring of a prepared Fock state can reveal quantum jumps between different photon-number states under weak perturbations.
4
Measurement back action induces phase diffusion because photon number and field phase are conjugate variables.
5
Ramsey atomic interferometry enables sequential measurements that progressively collapse the cavity field into a photon-number Fock state.
Research Object
Photons stored in a high-Q cavity interacting dispersively with nonresonant atoms
Research Subject
Quantum-nondemolition photon-number measurement, field-state collapse and manipulation, including quantum jumps and generation of Schrödinger cat states
Publication Details
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1992-04-01
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