Approaching classicality in quantum accelerator modes through decoherence.
نویسندگان
چکیده
We describe measurements of the mean energy of an ensemble of laser-cooled atoms in an atom optical system in which the cold atoms, falling freely under gravity, receive approximate delta-kicks from a pulsed standing wave of laser light. We call this system a "delta-kicked accelerator." Additionally, we can counteract the effect of gravity by appropriate shifting of the position of the standing wave, which restores the dynamics of the standard delta-kicked rotor. The presence of gravity (delta-kicked accelerator) yields quantum phenomena, quantum accelerator modes, which are markedly different from those in the case for which gravity is absent (delta-kicked rotor). Quantum accelerator modes result in a much higher rate of increase in the mean energy of the system than is found in its classical analog. When gravity is counteracted, the system exhibits the suppression of the momentum diffusion characteristic of dynamical localization. The effect of noise is examined and a comparison is made with simulations of both quantum-mechanical and classical versions of the system. We find that the introduction of noise results in the restoration of several signatures of classical behavior, although significant quantum features remain.
منابع مشابه
Decoherence and the (non)emergence of classicality
We prove that, regardless of the Hamiltonian, decoherence of subsystems in a preferred “pointer” basis does not occur for generic quantum states. This shows that the widespread belief that decoherence explains the emergence of classicality is incorrect, and that the emergence of classicality is only to be expected for a very small set of states.
متن کاملStudy of Quantum Decoherence in a Finite System. Three Schrödinger Cats and Crossing of Classical Orbits
Nuclei are rather classical systems in a sense. In the old days, their phenomena were roughly explained in classical rules such as the liquid drop model. This fact may be understood that when we see an finite quantum many body system like nucleus, though which is a group of quantum mechanical particles, its any collective degree of freedom has any classicality. Getting a classicality does not d...
متن کاملThe quantum-to-classical transition: Bohr’s doctrine of classical concepts, emergent classicality, and decoherence
It is now widely accepted that environmental entanglement and the resulting decoherence processes play a crucial role in the quantum-to-classical transition and the emergence of “classicality” from quantum mechanics. To this extent, decoherence is often understood as signifying a break with the Copenhagen interpretation, and in particular with Bohr’s view of the indispensability of classical co...
متن کاملar X iv : g r - qc / 9 30 20 29 v 1 2 2 Fe b 19 93 QUANTUM AND THERMAL FLUCTUATIONS , UNCERTAINTY PRINCIPLE , DECOHERENCE AND CLASSICALITY
We scrutize the commonly used criteria for classicality and examine their underlying issues. The two major issues we address here are that of decoherence and fluctuations. We borrow the insights gained in the study of the semiclassical limit of quantum cosmology to discuss the three criteria of classicality for a quantum closed system: adiabaticity, correlation and decoherence. We then use the ...
متن کاملIntrinsic decoherence dynamics in smooth Hamiltonian systems: Quantum-classical correspondence
A direct classical analog of the quantum dynamics of intrinsic decoherence in Hamiltonian systems, characterized by the time dependence of the linear entropy of the reduced density operator, is introduced. The similarities and differences between the classical and quantum decoherence dynamics of an initial quantum state are exposed using both analytical and computational results. In particular,...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
- Physical review. E, Statistical, nonlinear, and soft matter physics
دوره 64 5 Pt 2 شماره
صفحات -
تاریخ انتشار 2001