Tabatabaei Sahand, Priyadarsi Pritam, Singh Namanish, Sahafi Pardis, Tay Daniel, Jordan Andrew, Budakian Raffi
Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1.
Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1.
Sci Adv. 2024 Aug 23;10(34):eado9059. doi: 10.1126/sciadv.ado9059. Epub 2024 Aug 21.
Dynamic nuclear polarization (DNP) has revolutionized the field of nuclear magnetic resonance spectroscopy, expanding its reach and capabilities to investigate diverse materials, biomolecules, and complex dynamic processes. Bringing high-efficiency DNP to the nanometer scale would open exciting avenues for studying nanoscale nuclear spin ensembles, such as single biomolecules, virus particles, and condensed matter systems. Combining pulsed DNP with nanoscale force-detected magnetic resonance measurements, we demonstrated a 100-fold enhancement in the Boltzmann polarization of proton spins in nanoscale sugar droplets at 6 kelvin and 0.33 tesla. Crucially, this enhancement corresponds to a factor of 200 reduction in the averaging time compared to measurements that rely on the detection of statistical fluctuations in nanoscale nuclear spin ensembles. These results substantially advance the capabilities of force-detected magnetic resonance detection as a practical tool for nanoscale imaging.
动态核极化(DNP)彻底改变了核磁共振光谱领域,拓展了其研究各种材料、生物分子和复杂动态过程的范围与能力。将高效DNP应用于纳米尺度将为研究纳米级核自旋系综开辟令人兴奋的途径,例如单个生物分子、病毒颗粒和凝聚态物质系统。通过将脉冲DNP与纳米尺度力检测磁共振测量相结合,我们证明了在6开尔文和0.33特斯拉的条件下,纳米级糖滴中质子自旋的玻尔兹曼极化增强了100倍。至关重要的是,与依赖检测纳米级核自旋系综中统计涨落的测量相比,这种增强对应于平均时间缩短了200倍。这些结果极大地提升了力检测磁共振检测作为纳米级成像实用工具的能力。