Hyperpolarized solution-state NMR spectroscopy with optically polarized crystals
arXiv:2108.06147 · doi:10.1021/jacs.1c09119
Abstract
Nuclear spin hyperpolarization provides a promising route to overcome the challenges imposed by the limited sensitivity of nuclear magnetic resonance. Here we demonstrate that dissolution of spin-polarized pentacene-doped naphthalene crystals enables transfer of polarization to target molecules via intermolecular cross relaxation at room temperature and moderate magnetic fields (1.45T). This makes it possible to exploit the high spin polarization of optically polarized crystals while mitigating the challenges of its transfer to external nuclei, particularly of the large distances and prohibitively weak coupling between source and target nuclei across solid-solid or solid-liquid interfaces. With this method, here we inject the highly polarized mixture into a benchtop NMR spectrometer and observe the polarization dynamics for target H nuclei. Although the spectra are radiation damped due to the high naphthalene magnetization, we describe a procedure to process the data in order to obtain more conventional NMR spectra, and extract the target nuclei polarization. With the entire process occurring on a timescale of one minute, we observe NMR signals enhanced by factors between -200 and -1730 at 1.45T for a range of small molecules.
8 pages, 4 figures
Cited by in corpus (10)
- Robust Parahydrogen-Induced Polarization at High Concentrations
- Protecting Quantum Information via Destructive Interference of Correlated Noise
- Zero- to Ultralow-field Nuclear Magnetic Resonance
- Real-time polarimetry of hyperpolarized C nuclear spins using an atomic magnetometer
- Macroscopic Hyperpolarization Enhanced with Quantum Optimal Control
- C Hyperpolarization with Nitrogen-Vacancy Centers in Micro- and Nanodiamonds for Sensitive Magnetic Resonance Applications
- Live magnetic observation of parahydrogen hyperpolarization dynamics
- Towards a unified picture of polarization transfer -- pulsed DNP and chemically equivalent PHIP
- Optically Hyperpolarized Materials for Levitated Optomechanics
- Robust external spin hyperpolarization of quadrupolar nuclei enabled by strain