带集成低温低噪声放大器的低温w波段电子自旋共振探头

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
Moamen Jbara, Oleg Zgadzai, Wolfgang Harneit, Aharon Blank
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引用次数: 0

摘要

提高电子自旋共振(ESR)的灵敏度是一个持续的挑战。一个潜在的策略包括增加频率,例如,从q波段(大约35 GHz)移动到w波段(大约94 GHz)。然而,这种转变通常会导致更高的传输和开关损耗,以及信号放大器中的噪声增加。在这项工作中,我们通过使用一个w波段探头集成了一个低温低噪声放大器(LNA)和一个微谐振器来解决这些缺点。这种配置允许我们将LNA放置在靠近谐振器的位置,从而以最小的损失放大获得的ESR信号。此外,当在低温下工作时,LNA表现出无与伦比的噪音水平,显著低于传统的室温LNA。我们详细介绍了新型探针头的设计,并提供了一些在室温和低温下对具有代表性的顺磁样品的实验结果。例如,我们发现磷掺杂的28Si样品的自旋灵敏度达到了~ 3 × 105自旋/√Hz,即使对于次优的样品几何形状,在更优的情况下也有可能提高到<; 103自旋/√Hz。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cryogenic W-band Electron Spin Resonance Probehead with an Integral Cryogenic Low Noise Amplifier

The quest to enhance the sensitivity of electron spin resonance (ESR) is an ongoing challenge. One potential strategy involves increasing the frequency, for instance, moving from Q-band (approximately 35 GHz) to W-band (approximately 94 GHz). However, this shift typically results in higher transmission and switching losses, as well as increased noise in signal amplifiers. In this work, we address these shortcomings by employing a W-band probehead integrated with a cryogenic low-noise amplifier (LNA) and a microresonator. This configuration allows us to position the LNA close to the resonator, thereby amplifying the acquired ESR signal with minimal losses. Furthermore, when operated at cryogenic temperatures, the LNA exhibits unparalleled noise levels that are significantly lower than those of conventional room temperature LNAs. We detail the novel probehead design and provide some experimental results at room temperature as well as cryogenic temperatures for representative paramagnetic samples. We find, for example, that spin sensitivity of ~ 3 × 105 spins/√Hz is achieved for a sample of phosphorus doped 28Si, even for sub-optimal sample geometry with potential improvement to < 103 spins/√Hz in more optimal scenarios.

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来源期刊
Applied Magnetic Resonance
Applied Magnetic Resonance 物理-光谱学
CiteScore
1.90
自引率
10.00%
发文量
59
审稿时长
2.3 months
期刊介绍: Applied Magnetic Resonance provides an international forum for the application of magnetic resonance in physics, chemistry, biology, medicine, geochemistry, ecology, engineering, and related fields. The contents include articles with a strong emphasis on new applications, and on new experimental methods. Additional features include book reviews and Letters to the Editor.
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