课题基金 / 基金详情

Hyperstore: Singlet States and supercritical fluids for storage of hyperpolarised spin order / Nuclear Magnetic Resonance

Hyperstore: Singlet States and supercritical fluids for storage of hyperpolarised spin order / Nuclear Magnetic Resonance
Hyperstore:用于存储超极化自旋顺序/核磁共振的单线态和超临界流体
批准号:
2022066
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --

项目摘要

项目成果

相似基金

相关文献

中文摘要
翻译
核磁共振(NMR)是一种多功能的分析工具,应用范围从基础物理到医学。在其成像模式MRI中,它提供了解剖学、新陈代谢和生物功能的信息。然而,核磁共振的灵敏度很低,这使得它的许多用途很困难,如果没有某种形式的信号增强,其他用途就不可能实现。例如,通过核磁共振成像对人类癌症进行代谢成像,只是由于最近引入了核自旋超极化方法才成为可能。在这些方法中,溶解动态核极化(dDNP -本提案的核心)制备了非常高程度的核自旋极化,可以将信噪比提高到10,000倍。然而,尽管这种巨大的增强,体内应用仍然处于可行性的边缘,因为增强极化的寿命相对较短。例如,癌症代谢的超极化MRI图像的空间分辨率受到超极化材料在运输和纯化过程中信号丢失的影响。因此,对后超极化协议的改进,允许超极化材料的传输,将改进新兴技术并开辟新的研究和应用领域。拟议的研究将解决三个相互关联的主要障碍:缺乏超极化材料的纯度(超极化技术需要电子自由基);超极化磁化的有限寿命(自由基和许多其他内在因素的存在使核自旋极化随着时间的推移而衰减,这种机制称为自旋弛豫);极化设备(溶解- dnp设备)的流动性有限,价格昂贵且体积庞大,超极化剂的寿命有限,因此不可能将其运输很远的距离。因此,使用点被限制在生产点附近)。为了克服这些障碍,我们将使用超临界- co2色谱法快速有效地纯化超极化材料。由于自旋极化储存时间与粘度大致成反比,并且由于超临界co2的粘度比传统溶剂低10-30倍,我们也将在超临界co2下储存纯化的材料,可能将储存时间延长5-10倍。然后,我们将探索通过使用长寿命态和在液氮下冷冻超极化溶液来进一步延长储存时间,冻结分子运动,从而最大限度地减少弛豫损失。我们的目标是将超极化材料的存储时间延长到两个小时以上,增加生产点和使用点之间的距离。我们还打算建立一个方便和便携的传输装置,使超极化材料能够长距离传输(在最大寿命允许的范围内),而极化损失不超过50%。
英文摘要
Nuclear magnetic resonance (NMR) is a versatile analytical tool with applications ranging from basic physics to medicine. In its imaging mode, MRI, it provides information on anatomy, metabolism and biological functions. However, NMR has low sensitivity, making many of its uses difficult and others impossible without some form of signal enhancement. For example, metabolic imaging of human cancer by MRI was only made possible by the recent introduction of nuclear spin hyperpolarisation methods. Among these methods, dissolution dynamic nuclear polarisation (dDNP - central to this proposal) prepare a very high degree of nuclear spin polarisation that can increase the signal-to-noise ratio up to 10,000 times. However, despite this enormous enhancement, in-vivo applications remain on the borderline of feasibility because of the relatively short lifetime of the enhanced polarisation. For example, the spatial resolution of hyperpolarised MRI images of cancer metabolism is compromised by the loss of signal during transport and purification of the hyperpolarised material. Improvements to post-hyperpolarisation protocols, allowing transport of hyperpolarised material, would therefore improve emerging techniques and open up new areas of research and applications. The proposed research will address three interconnected main obstacles: the lack of purity of the hyperpolarised material (electron radicals are required by the hyperpolarisation technique); the limited lifetime of hyperpolarised magnetisation (the presence of radicals and many other intrinsic factors make nuclear spin polarisation to decay over time, a mechanism know as spin relaxation); the limited mobility of the polarising equipment (dissolution-DNP equipment is expensive and bulky and the limited lifetime of the hyperpolarised agents makes it impossible to transport the agent for significant distances. The point-of-use is therefore confined to the near vicinity of the point-of-production). In order to overcome these obstacles we will use supercritical-CO2 chromatography to rapidly and efficiently purify the hyperpolarised material. Because spin polarisation storage times are roughly inversely proportional to viscosity, and because supercritical-CO2 has a viscosity 10-30 times lower than that of conventional solvents, we will also store the purified material under supercritical-CO2, potentially extending the length of storage time by 5-10 times. We will then explore extending storage time further by using long-lived states and by freezing the hyperpolarised solution under liquid nitrogen, freezing molecular motion and therefore minimising relaxation losses. We aim to extend storage of hyperpolarised material to over two hours, increasing distance between the point-of-production and the point-of-use. We also intend to build a convenient and portable transport device to enable transport of hyperpolarised material over long distances (as allowed by maximum lifetime achieved) with loss of no more than 50% of polarisation.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
海外基金