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使用带快速温度斜坡的铝套进行批量模式临床规模氙-129 的光学超极化。

Batch-Mode Clinical-Scale Optical Hyperpolarization of Xenon-129 Using an Aluminum Jacket with Rapid Temperature Ramping.

机构信息

Department of Chemistry, Integrative Biosciences (Ibio), Wayne State University, Karmanos Cancer Institute (KCI), Detroit, Michigan 48202, United States.

XeUS Technologies LTD, Nicosia 2312, Cyprus.

出版信息

Anal Chem. 2020 Mar 17;92(6):4309-4316. doi: 10.1021/acs.analchem.9b05051. Epub 2020 Mar 2.

DOI:10.1021/acs.analchem.9b05051
PMID:32073251
Abstract

We present spin-exchange optical pumping (SEOP) using a third-generation (GEN-3) automated batch-mode clinical-scale Xe hyperpolarizer utilizing continuous high-power (∼170 W) pump laser irradiation and a novel aluminum jacket design for rapid temperature ramping of xenon-rich gas mixtures (up to 2 atm partial pressure). The aluminum jacket design is capable of heating SEOP cells from ambient temperature (typically 25 °C) to 70 °C (temperature of the SEOP process) in 4 min, and perform cooling of the cell to the temperature at which the hyperpolarized gas mixture can be released from the hyperpolarizer (with negligible amounts of Rb metal leaving the cell) in approximately 4 min, substantially faster (by a factor of 6) than previous hyperpolarizer designs relying on air heat exchange. These reductions in temperature cycling time will likely be highly advantageous for the overall increase of production rates of batch-mode (i.e., stopped-flow) Xe hyperpolarizers, which is particularly beneficial for clinical applications. The additional advantage of the presented design is significantly improved thermal management of the SEOP cell. Accompanying the heating jacket design and performance, we also evaluate the repeatability of SEOP experiments conducted using this new architecture, and present typically achievable hyperpolarization levels exceeding 40% at exponential build-up rates on the order of 0.1 min.

摘要

我们提出了使用第三代(GEN-3)自动化批量式临床级氙气超极化器的自旋交换光学泵浦(SEOP),该超极化器利用连续高功率(约 170 W)泵浦激光照射和新颖的铝套设计,可快速升高富含氙气的气体混合物的温度(最高可达 2 个大气压的分压力)。铝套设计能够在 4 分钟内将 SEOP 池从环境温度(通常为 25°C)加热到 70°C(SEOP 过程的温度),并在大约 4 分钟内将池冷却至超极化气体混合物可以从超极化器中释放的温度(几乎没有铷金属离开池),比以前依赖于空气热交换的超极化器设计快得多(快 6 倍)。这些温度循环时间的减少可能对批量式(即停流)氙气超极化器的总体生产速率的提高非常有利,这对于临床应用尤其有益。所提出设计的另一个优点是 SEOP 池的热管理得到了显著改善。伴随加热套设计和性能,我们还评估了使用这种新架构进行的 SEOP 实验的可重复性,并展示了通常可实现的极化水平超过 40%,指数增长率约为 0.1 分钟。

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