An Introduction to the Transmon Qubit for Electromagnetic Engineers
arXiv:2106.11352 · doi:10.1109/MAP.2022.3176593
Abstract
One of the most popular approaches being pursued to achieve a quantum advantage with practical hardware are superconducting circuit devices. Although significant progress has been made over the previous two decades, substantial engineering efforts are required to scale these devices so they can be used to solve many problems of interest. Unfortunately, much of this exciting field is described using technical jargon and concepts from physics that are unfamiliar to a classically trained electromagnetic engineer. As a result, this work is often difficult for engineers to become engaged in. We hope to lower the barrier to this field by providing an accessible review of one of the most prevalently used quantum bits (qubits) in superconducting circuit systems, the transmon qubit. Most of the physics of these systems can be understood intuitively with only some background in quantum mechanics. As a result, we avoid invoking quantum mechanical concepts except where it is necessary to ease the transition between details in this work and those that would be encountered in the literature. We believe this leads to a gentler introduction to this fascinating field, and hope that more researchers from the classical electromagnetic community become engaged in this area in the future.
10 pages, 8 figures
References in corpus (11)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Charge insensitive qubit design derived from the Cooper pair box
- Quantum computational advantage using photons
- Microwave photonics with superconducting quantum circuits
- Strong quantum computational advantage using a superconducting quantum processor
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Quantum information processing with circuit quantum electrodynamics
- Controlling the spontaneous emission of a superconducting transmon qubit
- Generating Single Microwave Photons in a Circuit
- Black-box superconducting circuit quantization
- Low-decoherence flux qubit
Cited by in corpus (11)
- Simulating Chemistry on Bosonic Quantum Devices
- Multi-mode architectures for noise-resilient superconducting qubits
- Design of an ultra-low mode volume piezo-optomechanical quantum transducer
- Multiphysics Numerical Method for Modeling Josephson Traveling-Wave Parametric Amplifiers
- Collisional charging of a transmon quantum battery
- Parameterization and optimizability of pulse-level VQEs
- A Generalized Scalar Potential Integral Equation Formulation for the DC Analysis of Conductors
- Zeno-effect Computation: Opportunities and Challenges
- On the fragility of gate-error metrics in simulation models of flux-tunable transmon quantum computers
- Suppressed paramagnetism in amorphous TaO oxides and its link to superconducting qubit performance
- Scalable quantum eraser for superconducting integrated circuits