Gadolinium Spin Decoherence Mechanisms at High Magnetic Fields

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Abstract

Favorable relaxation processes, high-field spectral properties, and biological compatibility have made spin-7/2 Gd3+-based spin labels an increasingly popular choice for protein structure studies using high-field electron paramagnetic resonance. However, high-field relaxation and decoherence in ensembles of half-integer high-spin systems, such as Gd3+, remain poorly understood. We report spin−lattice (T1) and phase memory (TM) relaxation times at 8.6 T (240 GHz), and we present the first comprehensive model of high-field, high-spin decoherence accounting for both the electron spin concentration and temperature. The model includes four principal mechanisms driving decoherence: energy-conserving electron spin flip-flops, direct “T1” spin−lattice relaxation-driven electron spin flip processes, indirect T1-driven flips of nearby electron spins, and nuclear spin flip-flops. Mechanistic insight into decoherence can inform the design of experiments making use of Gd3+ as spin probes or relaxivity agents and can be used to measure local average interspin distances as long as 17 nm.

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Wilson, C. B., Qi, M., Han, S., & Sherwin, M. S. (2023). Gadolinium Spin Decoherence Mechanisms at High Magnetic Fields. Journal of Physical Chemistry Letters, 14(47), 10578–10584. https://doi.org/10.1021/acs.jpclett.3c01847

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