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Quantum Zeno effect

Physical Review A · 1990 · Vol. 41(5) · pp. 2295–2300
Wayne M. ItanoD. J. HeinzenJ. J. BollingerD. J. Wineland

Abstract

The quantum Zero effect is the inhibition of transitions between quantum states by frequent measurements of the state. The inhibition arises because the measurement causes a collapse (reduction) of the wave function. If the time between measurements is short enough, the wave function usually collapses back to the initial state. We have observed this effect in an rf transition between two $^{9}$${\mathrm{Be}}^{+}$ ground-state hyperfine levels. The ions were confined in a Penning trap and laser cooled. Short pulses of light, applied at the same time as the rf field, made the measurements. If an ion was in one state, it scattered a few photons; if it was in the other, it scattered no photons. In the latter case the wave-function collapse was due to a null measurement. Good agreement was found with calculations.

Quantum Mechanics and ApplicationsQuantum Information and CryptographyMechanical and Optical ResonatorsPhysicsQuantum Zeno effectAtomic physicsHyperfine structurePhotonWave functionGround stateIonPenning trapQuantum mechanics
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References
The Zeno’s paradox in quantum theory
Journal of Mathematical Physics · 1977 · 2,210 citations
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