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Titanium Nitride Film on Sapphire Substrate with Low Dielectric Loss for Superconducting Qubits

Hao Deng1,*, Zhijun Song1, Ran Gao1, Tian Xia1, Feng Bao1, Xun Jiang1, Hsiang-Sheng Ku1, Zhisheng Li1, Xizheng Ma1 et al.

Jin Qin1, Hantao Sun1, Chengchun Tang1, Tenghui Wang1, Feng Wu1, Wenlong Yu1, Gengyan Zhang1, Xiaohang Zhang1, Jingwei Zhou1, Xing Zhu1, Yaoyun Shi2, Hui-Hai Zhao3, and Chunqing Deng1,†

  • 1Alibaba Quantum Laboratory, Alibaba Group, Hangzhou, Zhejiang 311121, People’s Republic of China
  • 2Alibaba Quantum Laboratory, Alibaba Group USA, Bellevue, Washington 98004, USA
  • 3Alibaba Quantum Laboratory, Alibaba Group, Beijing 100102, People’s Republic of China

  • *howl.dh@alibaba-inc.com
  • chunqing.cd@alibaba-inc.com

Phys. Rev. Applied 19, 024013 – Published 6 February, 2023

DOI: https://doi.org/10.1103/PhysRevApplied.19.024013

Abstract

Dielectric loss is one of the major decoherence sources of superconducting qubits. Contemporary high-coherence superconducting qubits are formed by material systems mostly consisting of superconducting films on substrate with low dielectric loss, where the loss mainly originates from the surfaces and interfaces. Among the multiple candidates for material systems, a combination of titanium nitride (TiN) film and sapphire substrate has good potential because of its chemical stability against oxidization and its high quality at interfaces. In this work, we report a TiN film deposited onto sapphire substrate achieving low dielectric loss at the material interface. Through the systematic characterizations of a series of transmon qubits fabricated with identical batches of TiN base layers but different geometries of qubit shunting capacitors with various participation ratios of the material interface, we quantitatively extract the loss-tangent value at the substrate-metal interface, which is smaller than 8.9×104 in a 1-nm disordered layer, and a limiting quality factor of about 7.3 million. By optimizing the interface participation ratio of the two-dimensional (2D) transmon qubit, we reproducibly achieve a quality factor of 5.7 million on average. The best 2D qubits show lifetimes of up to 300μs and quality factors achieving 8.1 million. We demonstrate that TiN film on sapphire substrate is an ideal material system for high-coherence superconducting qubits. Our analyses further suggest that the interface dielectric loss around the Josephson-junction part of the circuit could be the dominant limitation of lifetimes for state-of-the-art transmon qubits.

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