Control of free induction decay with quantum state preparation in a
weakly coupled multi-spin system
- URL: http://arxiv.org/abs/2309.00793v1
- Date: Sat, 2 Sep 2023 02:00:08 GMT
- Title: Control of free induction decay with quantum state preparation in a
weakly coupled multi-spin system
- Authors: Qian Cao, Tianzi Wang, and Wenxian Zhang
- Abstract summary: We propose a novel approach to control free induction decay (FID) signals in weakly coupled spin systems.
We investigate the FID signal of the three-spin system and compare the differences between the FID signals in the thermal state and the pseudo-pure state.
We validate our findings through numerical simulations and experimental measurements, and justify the validity of the theory.
- Score: 5.887287000510371
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Nuclear magnetic resonance (NMR) has been a widely used tool in various
scientific fields and practical applications, with quantum control emerging as
a promising strategy for synergistic advancements. In this paper, we propose a
novel approach that combines NMR and quantum state preparation techniques to
control free induction decay (FID) signals in weakly coupled spin systems,
specifically Trifluoroiodoethylene $C_2F_3I$. We investigate the FID signal of
the three-spin system and compare the differences between the FID signals in
the thermal state and the pseudo-pure state (PPS), where the latter is
generated using quantum state preparation techniques. Our approach aims to
demonstrate a single exponentially decaying FID in weakly coupled spins, in
which oscillatory FID signals are often observed. We validate our findings
through numerical simulations and experimental measurements, and justify the
validity of the theory. Our method opens a door to advancing spin system
research and extending the capabilities of NMR with current quantum
technologies in various scientific and practical fields.
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