Gaussian to Exponential Crossover in the Attenuation of Polarization Echoes in NMR
arXiv:cond-mat/0002332 · doi:10.1080/00268979809483253
Abstract
An ingenious pulse sequence devised by S. Zhang, B. H. Meier, and R. R. Ernst (Phys. Rev. Lett. {\bf 69}, 2149 (1992)) reverses the time evolution (``spin diffusion'') of the local polarization in a dipolar coupled H spin system. This refocusing originates a Polarization Echo whose amplitude attenuates by increasing the time elapsed until the dynamics is reversed. Different functional attenuations are found for a set of dipolar coupled systems: ferrocene, (CH)Fe, cymantrene, (CH)Mn(CO), and cobaltocene, (CH)Co. To control a relevant variable involved in this attenuation a pulse sequence has been devised to progressively reduce the dipolar dynamics. Since it reduces the evolution of the polarization echo it is referred as REPE sequence. Two extreme behaviors were found while characterizing the materials: In systems with a strong source of relaxation and slow dynamics, the attenuation follows an exponential law (cymantrene). In systems with a strong dipolar dynamics the attenuation is mainly Gaussian. By the application of the REPE sequence the characteristic time of the Gaussian decay is increased until the presence of an underlying dissipative mechanism is revealed (cobaltocene). For ferrocene, however, the attenuation remains Gaussian within the experimental time scale. These two behaviors suggest that the many body quantum dynamics presents an extreme intrinsic instability which, in the presence of small perturbations, leads to the onset of irreversibility. This experimental conclusion is consistent with the tendencies displayed by the numerical solutions of model systems.
7 pages + 7 Postscript figures
References in corpus (1)
Cited by in corpus (37)
- Dynamics of Loschmidt echoes and fidelity decay
- Environment-independent decoherence rate in classically chaotic systems
- Robust dynamical decoupling
- On general relation between quantum ergodicity and fidelity of quantum dynamics
- Sensitivity of Wave Field Evolution and Manifold Stability in Chaotic Systems
- Measuring the Lyapunov exponent using quantum mechanics
- Universality of the Lyapunov regime for the Loschmidt echo
- Decoherence as Decay of the Loschmidt Echo in a Lorentz Gas
- Sensitivity of quantum information to environment perturbations measured with a non-local out-of-time-order correlation function
- Decoherence from a Chaotic Environment: An Upside Down "Oscillator" as a Model
- Recurrence of fidelity in near integrable systems
- Emergent decoherence induced by quantum chaos in a many-body system: A Loschmidt echo observation through NMR
- Irreversible dynamics in quantum many-body systems
- Quantum Corrections to Fidelity Decay in Chaotic Systems
- Single-photon-triggered quantum chaos
- Ergodicity breaking in an incommensurate system observed by OTOCs and Loschmidt Echoes: From quantum diffusion to sub-diffusion
- Temperature of a single chaotic eigenstate
- Spin projection chromatography
- Loschmidt echo in many-spin systems: contrasting time-scales of local and global measurements
- Loschmidt echo in many-spin systems: a quest for intrinsic decoherence and emergent irreversibility
- Proliferation of effective interactions: decoherence-induced equilibration in a closed many-body system
- Fidelity decay for local perturbations: microwave evidence for oscillating decay exponents
- The semiclassical propagator in Fock space: dynamical echo and many-body interference
- Path integral approach to the quantum fidelity amplitude
- Decoherence factor as a convolution: an interplay between a Gaussian and an exponential coherence loss
- Chaos in circuit QED: decoherence, localization, and nonclassicality
- Measuring energy by measuring any other observable
- Consistent thermodynamics for spin echoes
- Localized Thermal States
- Role of energy uncertainties in ergodicity breaking induced by competing interactions and disorder. A dynamical assessment through the Loschmidt echo
- Non-monotonous short-time decay of the Loschmidt echo in quasi-one-dimensional systems
- Predicting Imperfect Echo Dynamics in Many-Body Quantum Systems
- Reversibility of dynamics and multiple-quantum coherences
- Global Out of Time Order Correlators as a Signature of Scrambling Dynamics of Local Observables
- Persistent many-body quantum echoes
- Gamow vectors formalism applied to the Loschmidt echo
- Loschmidt echo and Momentum Distribution in a Kitaev Spin Chain