Bulletin of the American Physical Society
2023 APS March Meeting
Volume 68, Number 3
Las Vegas, Nevada (March 5-10)
Virtual (March 20-22); Time Zone: Pacific Time
Session M73: Superconducting Qubits: Qubit materials
8:00 AM–11:00 AM,
Wednesday, March 8, 2023
Room: Room 405
Sponsoring
Unit:
DQI
Chair: Josh Mutus, Rigetti Quantum Computing
Abstract: M73.00002 : Single crystal nm-thick aluminum superconducting microwave resonators with internal quality factors above one million*
8:12 AM–8:24 AM
Presenter:
Yen-Hsun Glen Lin
(National Taiwan University)
Authors:
Yen-Hsun Glen Lin
(National Taiwan University)
Lawrence Boyu Young
(National Taiwan University)
Li-Shao Chiang
(National Taiwan University)
Chao-Kai Cheng
(National Taiwan University)
Wan-Sin Chen
(National Taiwan University)
Kuan-Hui Lai
(National Taiwan University)
Hsien-Wen Wan
(National Taiwan University)
Yi-Ting Cheng
(National Taiwan University)
Chia-Hung Hsu
(National Synchrotron Radiation Research Center)
Chi-Te Liang
(National Taiwan University)
Juhn-Jung Lin
(National Yang Ming Chiao Tung University)
Yen-Hsiang Lin
(National Tsing Hua University)
Jueinai Kwo
(National Tsing Hua University)
Minghwei Hong
(National Taiwan University)
High crystallinity of single-crystal Al films was characterized using synchrotron radiation X-ray diffraction. Clear Pendellosung fringes were observed, indicative of high crystallinity of the Al films and small interface roughness (< 0.5 nm) between the Al films and the adjacent layers. The full-width at half-maximum (FWHM) of θ-rocking curves of the Al films are record-low values of 0.015 degrees (54 arcsec) from samples with thicknesses from 3 nm to 20 nm-thick. The samples exhibited smooth surfaces and interfaces confirmed by X-ray reflectivity (XRR) and atomic force microscope. Microstrip resonators made from such single-crystal Al films reveal internal quality factors over 1 million around 7 GHz in the low power limit at 10 mK. Such single-crystal materials offer excellent potential of low dielectric loss, thus improving the coherence of superconducting quantum circuits.
*The authors would like to thank the support from the Ministry of Science and Technology (MOST) in Taiwan through Nos. MOST 110-2112-M-002-036-, 111-2119-M-007-005-, and the National Science and Technology Council (NSTC) in Taiwan through Nos. NSTC 111-2622-8-002-001-, NSTC 111-2811-M-002-123-. The authors acknowledge the support from YuShan Fellowship Program from the Ministry of Education, Taiwan, and the Center for Quantum Technology, Taiwan
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