在平面中强电荷-光子合,由颗粒超导体实现
Marián Janík1,2, Kevin Roux3, Carla Borja-Espinosa3
1ISTA, Institute of Science and Technology Austria, Am Campus 1, 3400, Klosterneuburg, Austria. marian.janik@ista.ac.at.
Nature communications
|March 2, 2025
概括
研究人员开发了一种新方法,可以精确控制颗粒型超导体的运动感应率. 这使得能够创建先进的量子设备,如量子比特和高保真度量子门.
科学领域:
- 量子计算是一种量子计算.
- 超导装置的超导器件
- 材料科学 材料科学 材料科学
背景情况:
- 高动力感应超导体对于量子技术,如量子比特和放大器至关重要.
- 它们的高阻抗促进了量子元素之间的强合.
- 控制颗粒型超导体的电感仍然是一个重大挑战.
研究的目的:
- 开发一种可重复的制造方法,用于控制动力电感的颗粒共振器.
- 为了能够创建具有高阻抗值的量子电路.
- 为了证明用于量子信息处理的强电荷-光子合.
主要方法:
- 在薄膜沉积过程中进行现场测量的无线欧姆表的开发.
- 制造具有精确控制的动力感应率的颗粒共振器.
- 高阻抗共振器与双量子点的集成.
主要成果:
- 实现了电路的可重复制造,阻抗超过13kΩ (每平方1nH).
- 证明了强大的电荷-光子合,其速率为gc/2π = 566 ± 2 MHz.
- 建立了一个广泛适用的制造先进超导量子电路的方法.
结论:
- 开发的无线欧米表和制造技术允许精确控制颗粒型超导体中的动力电感.
- 这一进步有助于实现新的量子比特和高保真性,长距离的两量子比特门.
- 这种方法在推进量子计算和传感技术方面具有重大潜力.
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