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使用掩埋氧化铟锡层制备高电场的透明电极。

Transparent electrodes for high E-field production using a buried indium tin oxide layer.

作者信息

Gunton Will, Polovy Gene, Semczuk Mariusz, Madison Kirk W

机构信息

Department of Physics and Astronomy, University of British Columbia, 6224 Agricultural Road, Vancouver, British Columbia V6T 1Z1, Canada.

出版信息

Rev Sci Instrum. 2016 Mar;87(3):033113. doi: 10.1063/1.4944411.

Abstract

We present a design and characterization of optically transparent electrodes suitable for atomic and molecular physics experiments where high optical access is required. The electrodes can be operated in air at standard atmospheric pressure and do not suffer electrical breakdown even for electric fields far exceeding the dielectric breakdown of air. This is achieved by putting an indium tin oxide coated dielectric substrate inside a stack of dielectric substrates, which prevents ion avalanche resulting from Townsend discharge. With this design, we observe no arcing for fields of up to 120 kV/cm. Using these plates, we directly verify the production of electric fields up to 18 kV/cm inside a quartz vacuum cell by a spectroscopic measurement of the dc Stark shift of the 5(2)S(1/2) → 5(2)P(3/2) transition for a cloud of laser cooled rubidium atoms. We also report on the shielding of the electric field and on the residual electric fields that persist within the vacuum cell once the electrodes are discharged. In addition, we discuss observed atom loss that results from the motion of free charges within the vacuum. The observed asymmetry of these phenomena on the bias of the electrodes suggests that field emission of electrons within the vacuum is primarily responsible for these effects and may indicate a way of mitigating them.

摘要

我们展示了一种适用于需要高光学透过率的原子和分子物理实验的光学透明电极的设计与特性。这些电极可在标准大气压的空气中运行,即使电场远超过空气的介电击穿强度,也不会发生电击穿。这是通过将涂有氧化铟锡的介电基板置于一堆介电基板内部来实现的,这样可以防止汤森放电导致的离子雪崩。采用这种设计,我们观察到在高达120 kV/cm的电场下不会产生电弧。使用这些极板,我们通过对一团激光冷却铷原子的5(2)S(1/2) → 5(2)P(3/2)跃迁的直流斯塔克位移进行光谱测量,直接验证了在石英真空腔内产生高达18 kV/cm的电场。我们还报告了电场屏蔽以及电极放电后真空腔内持续存在的残余电场情况。此外,我们讨论了由真空中自由电荷运动导致的原子损失现象。观察到的这些现象在电极偏压上的不对称性表明,真空中电子的场发射是这些效应的主要原因,并且可能暗示了一种减轻这些效应的方法。

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