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Design and characterization of a W-band system for modulated DNP experiments

机译:用于调制DNP实验的W波段系统的设计与表征

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摘要

Magnetic-field and microwave-frequency modulated DNP experiments have been shown to yield improved enhancements over conventional DNP techniques, and even to shorten polarization build-up times. The resulting increase in signal-to-noise ratios can lead to significantly shorter acquisition times in signal-limited multi-dimensional NMR experiments and pave the way to the study of even smaller sample volumes. In this paper we describe the design and performance of a broadband system for microwave frequency-and amplitude-modulated DNP that has been engineered to minimize both microwave and thermal losses during operation at liquid helium temperatures. The system incorporates a flexible source that can generate arbitrary waveforms at 94 GHz with a bandwidth greater than 1 GHz, as well as a probe that efficiently transmits the millimeter waves from room temperature outside the magnet to a cryogenic environment inside the magnet. Using a thin-walled brass tube as an overmoded waveguide to transmit a hybrid HE11 mode, it is possible to limit the losses to 1 dB across a 2 GHz bandwidth. The loss is dominated by the presence of a quartz window used to isolate the waveguide pipe. This performance is comparable to systems with corrugated waveguide or quasi-optical components. The overall excitation bandwidth of the probe is seen to be primarily determined by the final antenna or resonator used to excite the sample and its coupling to the NMR RF coil. Understanding the instrumental limitations imposed on any modulation scheme is key to understanding the observed DNP results and potentially identifying the underlying mechanisms. We demonstrate the utility of our design with a set of triangular frequency-modulated DNP experiments.
机译:磁场和微波频率调制的DNP实验已显示出比常规DNP技术更好的增强效果,甚至可以缩短极化建立时间。信噪比的增加可能导致信号受限的多维NMR实验中的采集时间大大缩短,并为研究更小的样品量铺平了道路。在本文中,我们描述了微波频率和幅度调制DNP宽带系统的设计和性能,该宽带系统已被设计为在液氦温度下工作时最小化微波和热损失。该系统集成了一个灵活的信号源,该信号源可以在94 GHz上产生带宽大于1 GHz的任意波形,还具有一个探头,该探头可以有效地将毫米波从磁体外部的室温传输到磁体内部的低温环境。使用薄壁黄铜管作为过调制波导来传输混合HE11模式,可以将2 GHz带宽上的损耗限制为1 dB。损耗主要是由用来隔离波导管的石英窗引起的。该性能可与带有波纹波导或准光学组件的系统相媲美。可以看出,探头的总激励带宽主要由用于激励样品及其耦合到NMR RF线圈的最终天线或谐振器确定。了解对任何调制方案施加的仪器限制是了解观察到的DNP结果并潜在识别潜在机制的关键。我们通过一组三角频率调制DNP实验证明了我们设计的实用性。

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