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首页> 外文期刊>Journal of magnetic resonance >Photonic band-gap resonators for high-field/high-frequency EPR of microliter-volume liquid aqueous samples
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Photonic band-gap resonators for high-field/high-frequency EPR of microliter-volume liquid aqueous samples

机译:用于微透镜液体含水样品的高场/高频EPR的光子带隙谐振器

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摘要

High-field EPR provides significant advantages for studying structure and dynamics of molecular systems possessing an unpaired electronic spin. However, routine use of high-field EPR in biophysical research, especially for aqueous biological samples, is still facing substantial technical difficulties stemming from high dielectric millimeter wave (mmW) losses associated with non-resonant absorption by water and other polar molecules. The strong absorbance of mmW's by water also limits the penetration depth to just fractions of mm or even less, thus making fabrication of suitable sample containers rather challenging. Here we describe a radically new line of high Q-factor mmW resonators that are based on forming lattice defects in one-dimensional photonic band-gap (PBG) structures composed of low-loss ceramic discs of lambda/4 in thickness and having alternating dielectric constants. A sample (either liquid or solid) is placed within the E = 0 node of the standing mm wave confined within the defect. A resonator prototype has been built and tested at 94.3 GHz. The resonator performance is enhanced by employing ceramic nanoporous membranes as flat sample holders of controllable thickness and tunable effective dielectric constant. The experimental Q-factor of an empty resonator was approximate to 420. The Q-factor decreased slightly to approximate to 370 when loaded with a water-containing nanoporous disc of 50 p.m in thickness. The resonator has been tested with a number of liquid biological samples and demonstrated about tenfold gain in concentration sensitivity vs. a high-Q cylindrical TE012-type cavity. Detailed HFSS Ansys simulations have shown that the resonator structure could be further optimized by properly choosing the thickness of the aqueous sample and employing metallized surfaces. The PBG resonator design is readily scalable to higher mmW frequencies and is capable of accommodating significantly larger sample volumes than previously achieved with either Fabr
机译:高场EPR为研究具有未配对电子旋转的分子系统的结构和动态提供了显着的优势。然而,常规使用高场EPR在生物物理研究中,特别是对于水性生物样品,仍然面临着与水和其他极性分子的非共振吸收相关的高介电毫米波(MMW)损失的实质性技术困难。 MMW的水的强烈吸光度也将穿透深度限制为仅为MM甚至更少的馏分,从而制造合适的样品容器相当具有挑战性。在这里,我们描述了一种基于一维光子带 - 间隙(PBG)结构中的形成晶格缺陷的高Q系数MMW谐振器的根本新的线路,其由厚度的低损耗陶瓷盘构成并具有交替的电介质。常数。将样品(液体或固体)置于常设MM波的E = 0节点内限制在缺陷内。谐振器原型已在94.3 GHz上进行建立和测试。通过使用陶瓷纳米多孔膜作为可控厚度和可调谐有效介电常数的平坦样品保持器来增强谐振器性能。空谐振器的实验Q系数近似为420.当装载含水的纳米多孔盘时,Q系数略微降低到370厚度。谐振器已经用多种液体生物样品进行了测试,并在浓度灵敏度与高Q圆柱TE012型腔中展示了大约十倍的增益。详细的HFSS ANSYS模拟表明,通过适当地选择水性样品的厚度和采用金属化表面,可以进一步优化谐振器结构。 PBG谐振器设计易于扩展到更高的MMW频率,并且能够容纳比使用FABR的更大的样品体积比以前实现的更大

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