使用超导流量量子比特进行可扩展的互连
Daisuke Saida1,2, Kazumasa Makise3,4, Mutsuo Hidaka3
1Fujitsu Limited, 1-1, Kamikodanaka 4-chome, Nakahara-ku, Kawasaki, Kanagawa, 211-8588, Japan. saida.daisuke@fujitsu.com.
Scientific reports
|July 16, 2024
概括
研究人员开发了一种新的2.5D超导量子计算技术,使用流量量子比特和翻转芯片结合. 这种方法克服了缩放瓶,为先进的量子和基于门的量子计算机提供了更多的量子比特.
科学领域:
- 量子计算是一种量子计算.
- 超导电路中的超导电路
- 量子化是一种量子化.
背景情况:
- 随着量子位数的增加,超导量子计算机面临着制造瓶.
- 可扩展的实现技术对于提高量子计算机性能至关重要.
- 2.5维 (2.5D) 实现通过增加路由自由度提高了电路可扩展性.
研究的目的:
- 引入一种实现技术,克服超导量子计算机中的缩放瓶.
- 为了证明可靠的连接量子位,以提高可扩展性.
- 探索这种技术在量子和潜在的门类型量子比特中的应用.
主要方法:
- 利用量子化与超导流量量子比特用于量子比特互连.
- 实施了对量子位合状态的精确控制.
- 采用低温翻转芯片粘合用于芯片之间的2.5D互连.
主要成果:
- 通过流量量子比特互连展示了概念验证量子比特合.
- 通过量子化实现了合状态的严格可控性.
- 通过翻转芯片结合,成功地通过两个芯片展示了超导流量量子位,显示了与传统量子位相似的状态过渡.
结论:
- 开发的量子化流量量子位和翻转芯片粘合技术使新的量子位互连成为可能.
- 这种2.5D实现方法有效地解决了超导量子计算中的缩放瓶.
- 这项技术有可能连接门型量子比特,为更大规模的量子处理器铺平道路.
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