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Integrating Binding Thermodynamics and Relaxation for Evaluating Substrate-Dependent SABRE Performance
Jingyi Wang1, Nan Zhuang1, Huijun Sun1
1Department of Electronic Science, School of Electronic Science and Engineering, Fujian Provincial Key Laboratory of Plasma and Magnetic Resonance, Xiamen University, Xiamen 361005, P. R. China.
Abstract:
Signal amplification by reversible exchange (SABRE), a parahydrogen-based hyperpolarization technique, stands out for its operational accessibility and exceptional sensitivity enhancement. However, the structure-dependent mechanisms underlying hyperpolarization efficiency remain elusive, hindering targeted optimization. Herein, we investigated the relationship between substrate structure and SABRE hyperpolarization efficiency by probing coordination thermodynamics between pyridine/pyrazine derivatives and iridium catalyst precursors using 1H NMR, 2D diffusion-ordered spectroscopy (DOSY), and T1 relaxation measurements. We found that substrates exhibiting large coordination equilibrium constants (Keq) and decreased self-diffusion coefficients upon ligation to the catalyst generally showed higher signal enhancement. Further hyperpolarization on a mixture of four pyridine derivatives confirmed a direct correlation between signal enhancement and Keq magnitudes, i.e., the higher the Keq, the stronger the SABRE enhancement. Furthermore, the rapid spin relaxation of the substrate, as evidenced by shortened T1 values upon ligation to the Ir catalyst, contributed to suboptimal hyperpolarization performance. These findings provide useful experimental insight into substrate-dependent SABRE performance by revealing the combined roles of substrate coordination to the catalyst precursor and relaxation-mediated polarization retention.
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