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Two-Volt Josephson Arbitrary Waveform Synthesizer Using Wilkinson Dividers

机译:使用威尔金森分频器的两伏约瑟夫森任意波形合成器

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摘要

The root-mean-square (rms) output voltage of the NIST Josephson arbitrary waveform synthesizer (JAWS) has been doubled from 1 V to a record 2 V by combining two new 1 V chips on a cryocooler. This higher voltage will improve calibrations of ac thermal voltage converters and precision voltage measurements that require state-of-the-art quantum accuracy, stability, and signal-to-noise ratio. We achieved this increase in output voltage by using four on-chip Wilkinson dividers and eight inner-outer dc blocks, which enable biasing of eight Josephson junction (JJ) arrays with high-speed inputs from only four high-speed pulse generator channels. This approach halves the number of pulse generator channels required in future JAWS systems. We also implemented on-chip superconducting interconnects between JJ arrays, which reduces systematic errors and enables a new modular chip package. Finally, we demonstrate a new technique for measuring and visualizing the operating current range that reduces the measurement time by almost two orders of magnitude and reveals the relationship between distortion in the output spectrum and output pulse sequence errors.
机译:NIST Josephson任意波形合成器(JAWS)的均方根(rms)输出电压已通过在冷冻机上组合两个新的1 V芯片而从1 V翻倍至创纪录的2V。更高的电压将改善交流热电压转换器的校准和精确的电压测量,这需要最新的量子精度,稳定性和信噪比。我们通过使用四个片上Wilkinson分压器和八个内部-外部dc模块,实现了输出电压的这种增加,这使得仅使用四个高速脉冲发生器通道的高速输入就可以偏置八个Josephson结(JJ)阵列。这种方法将未来的JAWS系统所需的脉冲发生器通道数量减少了一半。我们还在JJ阵列之间实现了片上超导互连,从而减少了系统误差并启用了新的模块化芯片封装。最后,我们演示了一种用于测量和可视化工作电流范围的新技术,该技术将测量时间缩短了近两个数量级,并揭示了输出频谱失真与输出脉冲序列误差之间的关系。

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