首页> 外文会议>Conference on millimetre wave and terahertz sensors and technology >Terahertz superconducting hot electron bolometers: technological issues and predicted mixer performance for Y-Ba-Cu-O devices
【24h】

Terahertz superconducting hot electron bolometers: technological issues and predicted mixer performance for Y-Ba-Cu-O devices

机译:太赫兹超导热电子测辐射热计:Y-Ba-Cu-O器件的技术问题和预期的混频器性能

获取原文

摘要

High-T_C superconducting (HTS) hot electron bolometers (HEB) are promising THz mixers due to their large expected bandwidth and low local oscillator (LO) power requirements at 60-80 K operating temperature. To obtain HEB efficient mixing, it is mandatory to grow very thin high quality HTS films leading to good micro or nano-bolometer superconducting properties. The challenge for Y-Ba-Cu-O resides, however, in the chemical reactivity of the material and the related aging effects. Early HEB models described the device in terms of thermal reservoirs only, namely the electrons and the phonons of the superconductor. The electron-phonon interaction time, which drives the HEB mixer ultimate response, is 1-2 ps for Y-Ba-Cu-O, with an expected bandwidth close to 100 GHz. Recently, we introduced the hot spot model for Y-Ba-Cu-O HEBs, taking - more realistically - the spatial dependence of the electron temperature along the nano-bolometer (or constriction) length into account. From DC analysis, the Ⅰ-Ⅴ characteristics could be deduced. In this paper, we further consider a full description of the constriction impedance at THz frequencies, which allows to work out the mixer performance in terms of double sideband noise temperature T_(DSB) and conversion gain G. For a constriction of technologically achievable dimensions, i.e., 400 nm long × 400 nm wide × 35 nm thick, minimum T_(DSB) = 1900 K at 9 μW LO power, with G = -9.5 dB, is obtained at 400 GHz, assuming impedance matching with a self-complementary planar antenna.
机译:高T_C超导(HTS)热电子辐射热计(HEB)有望成为THz混频器,因为它们的预期带宽大,并且在60-80 K的工作温度下具有较低的本地振荡器(LO)功率要求。为了获得HEB高效混合,必须生长非常薄的高质量HTS膜,以产生良好的微米或纳米辐射热测量仪超导性能。然而,Y-Ba-Cu-O的挑战在于材料的化学反应性和相关的时效效应。早期的HEB模型仅根据储热器(即超导体的电子和声子)描述了该设备。驱动HEB混合器最终响应的电子-声子相互作用时间对于Y-Ba-Cu-O为1-2 ps,预期带宽接近100 GHz。最近,我们引入了Y-Ba-Cu-O HEB的热点模型,更加现实地考虑了沿纳米辐射热计(或收缩)长度的电子温度的空间依赖性。通过DC分析,可以推断出Ⅰ-Ⅴ特性。在本文中,我们进一步考虑了THz频率下的压缩阻抗的完整描述,从而可以根据双边带噪声温度T_(DSB)和转换增益G来计算混频器性能。例如,假设阻抗与自互补平面匹配,则在400 GHz时,在9μWLO功率下,长400 nm×宽400 nm×厚35 nm,最小T_(DSB)= 1900 K,G = -9.5 dB天线。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号