通过优化材料和电路设计,在芯片上超导量子记忆中超越毫秒连贯性
Suhas Ganjam1,2, Yanhao Wang3,4, Yao Lu3,4
1Departments of Applied Physics and Physics, Yale University, New Haven, 06511, CT, USA. suhasganjam@google.com.
Nature communications
|May 1, 2024
概括
研究人员通过使用平台和优化设计来减少能量损失,改善了超导量子电路的连贯性. 这推动了量子计算的发展,提供了更可靠,更紧的量子位架构.
科学领域:
- 量子计算是一种量子计算.
- 材料科学 材料科学 材料科学
背景情况:
- 超导量子电路是量子计算的关键,但理解放松机制仍然是一个挑战.
- 设备的性能和连贯性受到这些电路中的能量损失的限制.
研究的目的:
- 开发一种多模式方法来描述超导量子电路中的能量损失.
- 通过材料,工艺和电路设计优化来预测设备性能和增强连贯性.
主要方法:
- 使用多模式方法来描述能量损失.
- 采用基于的材料平台和冷的蓝宝石基板来减少介电损失.
- 为同轴道架构优化设备几何.
主要成果:
- 实现了表面和散装介电损耗的显著降低.
- 基于和的跨子量子比特的预测放松时间,与实验数据一致.
- 实现了芯片上的量子记忆,Ramsey时间为2.02.7毫秒,受到1.01.4毫秒的能量放松时间的限制.
结论:
- 展示了一种新的材料和设计方法,以改善超导量子比特的连贯性.
- 为玻色量子比特推进了模块化和紧的同轴电路架构的开发.
- 在芯片上的量子记忆中实现了可重现的高连贯性.
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