SRON Netherlands Institute for Space Research, Landleven 12, 9747 AD Groningen and Niels Bohrweg 4, 2333 CA Leiden, The Netherlands.
Rev Sci Instrum. 2022 Dec 1;93(12):124901. doi: 10.1063/5.0108786.
We demonstrate multiplexed readout of 43 transition edge sensor (TES) bolometers operating at 90 mK using a frequency division multiplexing (FDM) readout chain with bias frequencies ranging from 1 to 3.5 MHz and a typical frequency spacing of 32 kHz. We improve the previously reported performance of our FDM system by two important steps. First, we replace the coplanar wires with microstrip wires, which minimize the cross talk from mutual inductance. From the measured electrical cross talk (ECT) map, the ECT of all pixels is carrier leakage dominated. Only five pixels show an ECT level higher than 1%. Second, we reduce the thermal response speed of the TES detectors by a factor of 20 by increasing the heat capacity of the TES, which allows us to bias all TES detectors below 50% in transition without oscillations. We compare the current-voltage curves and noise spectra of the TESs measured in single-pixel mode and multiplexing mode. We also compare the noise equivalent power (NEP) and the saturation power of the bolometers in both modes, where 38 pixels show less than 10% difference in NEP and 5% difference in saturation power when measured in the two different modes. The measured noise spectrum is in good agreement with the simulated noise based on measured parameters from an impedance measurement, confirming that our TES is dominated by phonon noise.
我们展示了使用频率分割多路复用(FDM)读出链对 43 个工作在 90 mK 的超导隧道结(TES)测辐射热计进行多路读出,读出链的偏置频率范围为 1 至 3.5 MHz,典型的频率间隔为 32 kHz。我们通过两个重要步骤改进了我们的 FDM 系统的先前报告的性能。首先,我们用微带线代替共面线,这最大限度地减少了互感引起的串扰。从测量的电串扰(ECT)图中可以看出,所有像素的 ECT 都是载流子泄漏主导的。只有五个像素的 ECT 水平高于 1%。其次,我们通过增加 TES 的热容将 TES 探测器的热响应速度降低了 20 倍,这使我们能够在不产生振荡的情况下将所有 TES 探测器偏置在 50%以下的转变中。我们比较了在单像素模式和多路复用模式下测量的 TES 的电流-电压曲线和噪声谱。我们还比较了两种模式下的噪声等效功率(NEP)和测辐射热计的饱和功率,其中 38 个像素在两种模式下测量的 NEP 差异小于 10%,饱和功率差异小于 5%。测量的噪声谱与基于阻抗测量中测量参数的模拟噪声非常吻合,这证实了我们的 TES 主要受声子噪声的支配。