Influence of quadrupolar interaction on NMR spectroscopy

Fuente: arXiv
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Autores principales: Joch, Alina, Uhrig, Götz S.
Formato: Preprint
Publicado: 2023
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author Joch, Alina
Uhrig, Götz S.
author_facet Joch, Alina
Uhrig, Götz S.
contents Optically driven electronic spins coupled in quantum dots to nuclear spins show a pre-pulse signal (revival amplitude) after having been trained by long periodic sequences of pulses. The size of this revival amplitude depends on the external magnetic field in a specific way due to the varying commensurability of the nuclear Larmor precession period with the time $T_\text{rep}$ between two consecutive pulses. In theoretical simulations, sharp dips occur at fields when an integer number of precessions fits in $T_\text{rep}$; this feature could be used to identify nuclear isotopes spectroscopically. But these sharp and characteristic dips have not (yet) been detected in experiment. We study whether the nuclear quadrupolar interaction is the reason for this discrepancy because it perturbs the nuclear precessions. But our simulations show that the absolute width of the dips and their relative depth are not changed by quadrupolar interactions. Only the absolute depth decreases. We conclude that quadrupolar interaction alone cannot be the reason for the absence of the characteristic dips in experiment.
format Preprint
id arxiv_https___arxiv_org_abs_2307_07324
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Influence of quadrupolar interaction on NMR spectroscopy
Joch, Alina
Uhrig, Götz S.
Mesoscale and Nanoscale Physics
Optically driven electronic spins coupled in quantum dots to nuclear spins show a pre-pulse signal (revival amplitude) after having been trained by long periodic sequences of pulses. The size of this revival amplitude depends on the external magnetic field in a specific way due to the varying commensurability of the nuclear Larmor precession period with the time $T_\text{rep}$ between two consecutive pulses. In theoretical simulations, sharp dips occur at fields when an integer number of precessions fits in $T_\text{rep}$; this feature could be used to identify nuclear isotopes spectroscopically. But these sharp and characteristic dips have not (yet) been detected in experiment. We study whether the nuclear quadrupolar interaction is the reason for this discrepancy because it perturbs the nuclear precessions. But our simulations show that the absolute width of the dips and their relative depth are not changed by quadrupolar interactions. Only the absolute depth decreases. We conclude that quadrupolar interaction alone cannot be the reason for the absence of the characteristic dips in experiment.
title Influence of quadrupolar interaction on NMR spectroscopy
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2307.07324