Quantum control of population transfer between vibrational states in an optical lattice
Matin Hallaji, Chao Zhuang, Alex Hayat, Felix Motzoi, Botan Khani,, Frank K. Wilhelm, Aephraim M. Steinberg

TL;DR
This paper compares quantum control techniques ARP and GRAPE for transferring atoms between vibrational states in an optical lattice, demonstrating their advantages over previous methods and analyzing their effectiveness and limitations.
Contribution
It introduces optimized control sequences using ARP and GRAPE for vibrational state transfer in optical lattices, showing improved performance over prior techniques.
Findings
ARP and GRAPE achieve ~39% transfer efficiency to first excited state.
GRAPE minimizes population of higher excited states to below 3.3%.
ARP achieves highest population inversion among tested methods.
Abstract
We study quantum control techniques, specifically Adiabatic Rapid Passage (ARP) and Gradient Ascent Pulse Engineering (GRAPE), for transferring atoms trapped in an optical lattice between different vibrational states. We compare them with each other and with previously studied coupling schemes in terms of performance. In our study of ARP, we realize control of the vibrational states by tuning the frequency of a spatial modulation through the inhomogeneously broadened vibrational absorption spectrum. We show that due to the presence of multiple crossings, the population transfer depends on the direction of the frequency sweep, in contrast to traditional ARP. In a second study, we control these states by applying a pulse sequence involving both the displacement of the optical lattice and modulation of the lattice depth. This pulse is engineered via the GRAPE algorithm to maximize the…
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Taxonomy
TopicsSpectroscopy and Laser Applications · Quantum optics and atomic interactions · Spectroscopy and Quantum Chemical Studies
