论文标题
量子状态中传播微波的一级温度计
Primary thermometry of propagating microwaves in the quantum regime
论文作者
论文摘要
对于量子信息处理,控制和测量传播微波模式的温度是必不可少的,并且可能在量子状态下开放纳米级的热传输的机会。在这里,我们提出并在实验上证明了使用Transmon Type超导电路的传播微波的一级温度计。我们的设备连续运行,灵敏度降至$ 4 \ times 10^{ - 4} $ photons/$ \ sqrt {\ mbox {hz}} $,带宽为40 MHz。我们测量高度衰减同轴电缆的模式的热占用,范围为0.001至0.4个热光子,对应于5 GHz左右的温度范围从35 mk到210 mk。为了以受控的方式升高辐射温度,我们要么注入校准,宽带数字噪声,要么加热设备及其环境。该温度计方案可以在低温微波设置,杂交量子系统中的温度测量和量子热力学的基准测试和表征中找到应用。
The ability to control and measure the temperature of propagating microwave modes down to very low temperatures is indispensable for quantum information processing, and may open opportunities for studies of heat transport at the nanoscale, also in the quantum regime. Here we propose and experimentally demonstrate primary thermometry of propagating microwaves using a transmon-type superconducting circuit. Our device operates continuously, with a sensitivity down to $4\times 10^{-4}$ photons/$\sqrt{\mbox{Hz}}$ and a bandwidth of 40 MHz. We measure the thermal occupation of the modes of a highly attenuated coaxial cable in a range of 0.001 to 0.4 thermal photons, corresponding to a temperature range from 35 mK to 210 mK at a frequency around 5 GHz. To increase the radiation temperature in a controlled fashion, we either inject calibrated, wideband digital noise, or heat the device and its environment. This thermometry scheme can find applications in benchmarking and characterization of cryogenic microwave setups, temperature measurements in hybrid quantum systems, and quantum thermodynamics.