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通过超导量子位阵列的隙工程抵御高能冲击事件
Matt McEwen1, Kevin C Miao1, Juan Atalaya1
1<a href="https://ror.org/00njsd438">Google Quantum AI</a>, Santa Barbara, California 93117, USA.
Physical review letters
|January 3, 2025
概括
超导量子比特中的间隙工程可以防止由高能冲击引起的相关错误. 这种技术提高了量子错误校正 (QEC) 的稳定性,为更可靠的量子计算铺平了道路.
科学领域:
- 量子计算是一种量子计算.
- 超导量子比特是超导量子比特.
- 材料科学 材料科学 材料科学
背景情况:
- 量子错误校正 (QEC) 依赖于对于容错量子计算的无关错误.
- 超导量子比特易受高能冲击和准粒子 (QP) 道引发的相关错误的影响.
- 冲击后的声子传播增加了QP密度,导致相关的量子位错误.
研究的目的:
- 调查超导间隙工程在缓解跨子量子比特相关错误方面的有效性.
- 评估高能事件和光学照明对具有不同间隙工程的量子比特的影响.
主要方法:
- 在单个基板上制造具有强超导和弱超导间隙工程的全跨子量子比特.
- 量子比特暴露于高能冲击事件和不同的光学照明强度.
- 在不同的条件下测量量子比特连贯时间 (T1) 和误差率.
主要成果:
- 强度差距工程量子比特在撞击事件期间没有显示T1的退化.
- 弱间隙工程量子比特在冲击后表现出相关的T1降解.
- 强大的间隙工程量子比特证明了对光学照明的QP中毒的稳定性,与弱工程量子比特不同.
结论:
- 超导间隙工程有效地减轻因高能冲击和QP道而产生的相关错误.
- 这种方法提高了超导量子比特对环境干扰的弹性.
- 间隙工程是提高超导量子计算机量子错误校正可靠性的有希望的策略.
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