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Scalable modeling of multi-spin ensembles in SABRE hyperpolarization: a symmetry-based framework for zero and ultralow fields Full article

Journal Magnetic Resonance
ISSN: 2699-0016
Output data Year: 2026, Volume: 7, Number: 1, Pages: 53-79 Pages count : 27 DOI: 10.5194/mr-7-53-2026
Tags SABRE, multi-spin modeling, ZULF
Authors Markelov Danil 1 , Snadin Alexander 1 , Kiryutin Alexey 1 , Barskiy Danila 2 , Yurkovskaya Alexandra 1
Affiliations
1 International Tomography Center SB RAS, Institutskaya 3a, Novosibirsk, 630090, Russia
2 Frost Institute for Chemistry and Molecular Science, Department of Chemistry, University of Miami, Coral Gables, FL 33146, USA

Abstract: This work presents a theoretical framework for quantitative, scalable modeling of signal amplification by reversible exchange (SABRE) experiments under zero- and ultralow-field (ZULF) conditions. SABRE exploits the singlet spin order of parahydrogen to hyperpolarize nuclear spins of substrates without chemical modification, enhancing NMR signals. In the ZULF SABRE method, polarization transfer occurs in ultralow magnetic fields where Zeeman interactions are comparable to or weaker than scalar couplings, enabling coherent mixing of spin states and revealing interactions often suppressed at high fields. Our approach captures the full quantum dynamics of SABRE, including coherent evolution, chemical exchange, and relaxation, within a Liouville space formalism. We demonstrate that the Hamiltonian, relaxation, and exchange superoperators possess symmetry with respect to the total spin, allowing the dynamics to be rigorously restricted to the zero-quantum coherence subspace. This symmetry-based reduction yields a scalable framework for efficient simulation of multi-spin SABRE systems, allowing the treatment of arbitrary spin ensembles, including those containing 15N, 13C, 1H, and other nuclei. The approach is validated against full Liouville space calculations for small systems and is further applied to a 14-spin SABRE complex, demonstrating its ability to treat spin systems of a complexity well beyond the reach of conventional full Liouville space simulations. The framework thus provides a predictive tool for optimal polarization fields, ZULF NMR spectra, and the design of novel hyperpolarization experiments.
Cite: Markelov D. , Snadin A. , Kiryutin A. , Barskiy D. , Yurkovskaya A.
Scalable modeling of multi-spin ensembles in SABRE hyperpolarization: a symmetry-based framework for zero and ultralow fields
Magnetic Resonance. 2026. V.7. N1. P.53-79. DOI: 10.5194/mr-7-53-2026
Dates:
Submitted: Feb 19, 2026
Accepted: Apr 13, 2026
Published online: May 21, 2026
Identifiers: No identifiers
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