Ternary metal oxide substrates for superconducting circuits

Zach Degnan, Xin He, Alejandro G. Frieiro, Y. Sachkou, A. Fedorov, P. Jacobson
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引用次数: 2

Abstract

Substrate material imperfections and surface losses are one of the major factors limiting superconducting quantum circuitry from reaching the scale and complexity required to build a practical quantum computer. One potential path towards higher coherence of superconducting quantum devices is to explore new substrate materials with a reduced density of imperfections due to inherently different surface chemistries. Here, we examine two ternary metal oxide materials, spinel (MgAl2O4) and lanthanum aluminate (LaAlO3), with a focus on surface and interface characterization and preparation. Devices fabricated on LaAlO3 have quality factors three times higher than those of earlier devices, which we attribute to a reduction in the interfacial disorder. MgAl2O4) is a new material in superconducting quantum devices, and even in the presence of significant surface disorder, it consistently outperforms LaAlO3. Our results highlight the importance of materials exploration, substrate preparation, and characterization for identifying materials suitable for high-performance superconducting quantum circuitry.
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超导电路用三元金属氧化物衬底
衬底材料缺陷和表面损耗是限制超导量子电路达到构建实用量子计算机所需的规模和复杂性的主要因素之一。实现超导量子器件高相干性的一个潜在途径是探索由于表面化学性质固有不同而降低缺陷密度的新衬底材料。在这里,我们研究了两种三元金属氧化物材料,尖晶石(MgAl2O4)和铝酸镧(LaAlO3),重点研究了表面和界面的表征和制备。在LaAlO3上制造的器件的质量因子比以前的器件高三倍,我们将其归因于界面紊乱的减少。MgAl2O4)是超导量子器件中的一种新材料,即使存在明显的表面无序,其性能也始终优于LaAlO3。我们的研究结果强调了材料探索,衬底制备和表征对于确定适合高性能超导量子电路的材料的重要性。
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