arrow
Return

Compact 3D quantum memory

delete2018-05-18
delete12
delete
OA
AI
E
Edwar Xie *
F
Frank Deppe
M
Michael Renger
D
Daniel Repp
P
Peter Eder
M
Michael Fischer
J
Jan Goetz
S
Stefan Pogorzalek
K
Kirill G. Fedorov
A
Achim Marx
R
Rudolf Groß
DOI:10.1063/1.5029514delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
Superconducting 3D microwave cavities offer state-of-the-art coherence times and a well-controlled environment for superconducting qubits. In order to realize at the same time fast readout and long-lived quantum information storage, one can couple the qubit to both a low-quality readout and a high-quality storage cavity. However, such systems are bulky compared to their less coherent 2D counterparts. A more compact and scalable approach is achieved by making use of the multi-mode structure of a 3D cavity. In our work, we investigate such a device where a transmon qubit is capacitively coupled to two modes of a single 3D cavity. External coupling is engineered so that the memory mode has an about 100 times larger quality factor than the readout mode. Using an all-microwave second-order protocol, we realize a lifetime enhancement of the stored state over the qubit lifetime by a factor of 6 with a fidelity of approximately 80% determined via quantum process tomography. We also find that this enhancement is not limited by fundamental constraints. Published by AIP Publishing.
Keywords:
INFORMATION
QUBIT
COMPUTATION
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Applied Physics Letters cover
Applied Physics Letters
IF:
3.6
Papers:
10.4W
Citations:
17.8W

Organization

T
Technical University of Munich
Scholars:
5.2W
Papers: 3.9W
Citations: 6.2W