Qubit Coupling to Reservoir Modes: Engineering the Circuitry to Enhance the Coherence Time
Ahmad Salmanogli

TL;DR
This paper models how circuitry elements influence qubit decay and dephasing, showing that optimizing circuit parameters can significantly enhance qubit coherence times in quantum computing.
Contribution
It provides a theoretical framework linking circuit design to qubit coherence, highlighting the impact of coupling capacitors on relaxation and dephasing rates.
Findings
Decay rate is strongly affected by the coupling capacitor.
Decreasing coupling capacitors increases relaxation time.
Photon generation due to reservoir coupling impacts coherence.
Abstract
In this study, a circuitry model of the coupling of a qubit to reservoir modes is defined to clearly determine the effect of the reservoir modes on the qubit decay and dephasing rates. The main goal is to theoretically calculate the dephasing and decay rate of a qubit, particularly due to the circuitry effect. Firstly, the Hamiltonian of the system (coupling of a qubit to the reservoir modes) is defined and used to derive the time evolution of the density matrix for the qubit energy levels. By calculating the qubit level density evolutions, one can estimate at which frequency the maximum coupling occurs and, in addition, knows about the role of the electromagnetic bias in the qubit. Secondly, the qubit decay rate is theoretically derived. The results show that the decay rate is strongly affected by circuitry elements such as the qubit capacitor and, more importantly, the coupling…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsQuantum Information and Cryptography · Neural Networks and Reservoir Computing · Quantum and electron transport phenomena
