Kelley Michele, Bryden Nicholas, Atalla Sebastian William, Branca Rosa Tamara
University of North Carolina at Chapel Hill, Chapel Hill, NC, U.S.
Chemphyschem. 2023 Oct 4;24(19):e202300284. doi: 10.1002/cphc.202300284. Epub 2023 Jul 27.
Ultra-low field nuclear magnetic resonance spectroscopy (NMR) and imaging (MRI) inherently suffer from a low signal-to-noise ratio due to the small thermal polarization of nuclear spins. Transfer of polarization from a pre-polarized spin system to a thermally polarized spin system via the Spin Polarization Induced Nuclear Overhauser Effect (SPINOE) could potentially be used to overcome this limitation. SPINOE is particularly advantageous at ultra-low magnetic field, where the transferred polarization can be several orders of magnitude higher than thermal polarization. Here we demonstrate direct detection of polarization transfer from highly polarized Xe gas spins to H spins in solution via SPINOE. At ultra-low field, where thermal nuclear spin polarization is close to background noise levels and where different nuclei can be simultaneously detected in a single spectrum, the dynamics of the polarization transfer can be observed in real time. We show that by simply bubbling hyperpolarized Xe into solution, we can enhance H polarization levels by a factor of up to 151-fold. While our protocol leads to lower enhancements than those previously reported under extreme Xe gas pressures, the methodology is easily repeatable and allows for on-demand enhanced spectroscopy. SPINOE at ultra-low magnetic field could also be employed to study Xe interactions in solutions.
由于核自旋的热极化较小,超低场核磁共振波谱(NMR)和成像(MRI)本质上存在低信噪比的问题。通过自旋极化诱导核Overhauser效应(SPINOE)将极化从预极化自旋系统转移到热极化自旋系统,有可能用于克服这一限制。SPINOE在超低磁场下特别有利,在这种情况下,转移的极化可比热极化高几个数量级。在这里,我们展示了通过SPINOE直接检测从高极化氙气自旋到溶液中氢自旋的极化转移。在超低场中,热核自旋极化接近背景噪声水平,并且可以在单个光谱中同时检测不同的原子核,极化转移的动力学可以实时观察到。我们表明,通过简单地将超极化氙鼓泡到溶液中,我们可以将氢极化水平提高多达151倍。虽然我们的方案导致的增强效果比以前在极端氙气压力下报道的要低,但该方法易于重复,并允许按需增强光谱。超低磁场下的SPINOE也可用于研究溶液中的氙相互作用。