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Temperature dependence of a superconducting tunnel junction x-ray detector

机译:超导隧道结x射线探测器的温度依赖性

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Abstract: Superconducting tunnel junctions can be used as part of a high-resolution, energy-dispersive x- ray detector. The energy of the absorbed x ray is used to break superconducting electron pairs, producing on the order of 10$+6$/ excitations, called quasiparticles. The number of quasiparticles produced is proportional to the energy of the absorbed x ray. When a bias voltage is maintained across the barrier, these quasiparticles produce a net tunneling current. Either the peak tunneling current or the total tunneled charge may be measured to determine the energy of the absorbed x ray. The tunneling rate, and therefore the signal, is enhanced by the use of a quasiparticle trap near the tunnel barrier. The trapping efficiency is improved by decreasing the energy gap, though this reduces the maximum temperature at which the device may operate. In our niobium/aluminum configuration, we can very the energy gap in the trapping layer by varying its thickness. This paper examines the performance of two devices with 50 nm aluminum traps at temperatures ranging from 100 mK to 700 mK. We found that this device has a very good energy resolution of about 12 eV FWHM at 1 keV. This energy resolution is independent of temperature for much of this temperature range. !10
机译:摘要:超导隧道连接可作为高分辨率,能量分散X射线探测器的一部分。吸收的X射线的能量用于破坏超导电子对,从10美元+ 6美元/激动的顺序中产生,称为QuasiParticles。产生的Quasiply的数量与吸收的X射线的能量成比例。当横跨屏障横跨屏障时,这些Quasiply生产净隧道电流。可以测量峰隧道电流或总隧道电荷以确定吸收的X射线的能量。通过在隧道屏障附近的Quasiparticle陷阱使用Quasiparticle Trap来增强隧道速率和信号。通过降低能量隙来改善捕获效率,但这降低了装置可以操作的最高温度。在我们的铌/铝制配置中,我们可以通过改变其厚度来极为捕获层的能隙。本文介绍了两种器件的性能,在温度范围为100 mk至700 mk的温度下。我们发现,该设备在1 kev处具有大约12e的EV FWHM的能量分辨率非常好。这种能量分辨率与大部分温度范围的温度无关。 !10

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