SABRE Enhancement with Oscillating Pulse Sequences: Symmetry Reduces Robustness
Xiaoqing Li, Jacob R. Lindale, Shannon L. Eriksson, Warren S. Warren

TL;DR
This paper introduces oscillating pulse sequences for SABRE hyperpolarization that significantly increase polarization levels and robustness, challenging the traditional LAC-based analysis and expanding the technique's effectiveness.
Contribution
The study develops and demonstrates oscillating pulse sequences that enhance SABRE polarization and robustness, moving beyond the limitations of level anti-crossing analysis.
Findings
Oscillating pulses can triple SABRE polarization.
Weaker J-couplings produce maximum polarization.
Reduced symmetry waveforms improve robustness.
Abstract
SABRE (Signal Amplification by Reversible Exchange) methods provide a simple, fast, and cost-effective method to hyperpolarize a wide variety of molecules in solution, and have been demonstrated with protons and, more recently, with heteronuclei (X-SABRE). The conventional analysis of the SABRE effect is based on level anti-crossings (LACs), which requires very low magnetic fields (~ 0.6uT) to achieve resonance and transfer spin order from the para-hydrogen to target heteronuclei. We have demonstrated in our recent study that the validity of LACs used in SABRE is very limited, so the maximum SABRE polarization predicted with LACs is not correct. Here, we present several oscillating pulse sequences that use magnetic fields far away from the resonance condition and can commonly triple the polarization. An analysis with average Hamiltonian theory indicates that the oscillating pulse, in…
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