Review of Superconducting Qubit Devices and Their Large-Scale Integration
Hiu Yung Wong

TL;DR
This review covers superconducting qubit technology, focusing on device types, entanglement schemes, readout methods, defect issues, and large-scale integration strategies for quantum computing.
Contribution
It provides a comprehensive overview of superconducting qubit devices, their design trade-offs, and the challenges and proposals for large-scale quantum computer integration.
Findings
Different superconducting qubit types and their noise immunity
Schemes for entanglement gate operations
Review of readout engineering and defect issues
Abstract
The superconducting qubit quantum computer is one of the most promising quantum computing architectures for large-scale integration due to its maturity and close proximity to the well-established semiconductor manufacturing infrastructure. From an education perspective, it also bridges classical microwave electronics and quantum electrodynamics. In this paper, we will review the basics of quantum computers, superconductivity, and Josephson junctions. We then introduce important technologies and concepts related to DiVincenzo's criteria, which are the necessary conditions for the superconducting qubits to work as a useful quantum computer. Firstly, we will discuss various types of superconducting qubits formed with Josephson junctions, from which we will understand the trade-off across multiple design parameters, including their noise immunity. Secondly, we will discuss different schemes…
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