English

Improving the lifetime of aluminum-based superconducting qubits through atomic layer etching and deposition

Applied Physics 2025-06-24 v1 Materials Science Quantum Physics

Abstract

We present a dry surface treatment combining atomic layer etching and deposition (ALE and ALD) to mitigate dielectric loss in fully fabricated superconducting quantum devices formed from aluminum thin films on silicon. The treatment, performed as a final processing step prior to device packaging, starts by conformally removing the native metal oxide and fabrication residues from the exposed surfaces through ALE before \textit{in situ} encapsulating the metal surfaces with a thin dielectric layer using ALD. We measure a two-fold reduction in loss attributed to two-level system (TLS) absorption in treated aluminum-based resonators and planar transmon qubits. Treated transmons with compact capacitor plates and gaps achieve median QQ and T1T_1 values of 3.69±0.42×1063.69 \pm 0.42 \times 10^6 and 196±22196 \pm 22~μ\mus, respectively. These improvements were found to be sustained over several months. We discuss how the combination of ALE and ALD reverses fabrication-induced surface damages to significantly and durably improve device performance via a reduction of the TLS defect density in the capacitive elements.

Keywords

Cite

@article{arxiv.2506.17474,
  title  = {Improving the lifetime of aluminum-based superconducting qubits through atomic layer etching and deposition},
  author = {Neha Mahuli and Joaquin Minguzzi and Jiansong Gao and Rachel Resnick and Sandra Diez and Cosmic Raj and Guillaume Marcaud and Matthew Hunt and Loren Swenson and Jefferson Rose and Oskar Painter and Ignace Jarrige},
  journal= {arXiv preprint arXiv:2506.17474},
  year   = {2025}
}

Comments

20 pages, 15 figures