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A diagrammatic method to compute the effective Hamiltonian of driven nonlinear oscillators

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arxiv 2304.13656 v2 pith:NPXATQ4O submitted 2023-04-26 quant-ph

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keywords methodhamiltoniandrivendiagrammaticeffectiveoscillatorscharacterizationcircuits
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

In this work, we present a new diagrammatic method for computing the effective Hamiltonian of driven nonlinear oscillators. At the heart of our method is a self-consistent perturbation expansion developed in phase space, which establishes a direct correspondence between the diagram and algebra. Each diagram corresponds to a Hamiltonian term, the prefactor of which, like those in Feynman diagrams, involves a simple counting of topologically equivalent diagrams. Leveraging the algorithmic simplicity of our diagrammatic method, we provide a readily available computer program that generates the effective Hamiltonian to arbitrary order. We show the consistency of our schemes with existing perturbation methods such as the Schrieffer-Wolff method. Furthermore, we recover the classical harmonic balance scheme from our result in the limit of $\hbar\rightarrow0$. Our method contributes to the understanding of dynamic control within quantum systems and achieves precision essential for advancing future quantum information processors. To demonstrate its value and versatility, we analyze five examples from the field of superconducting circuits. These include an experimental proposal for the Hamiltonian stabilization of a three-legged Schr\"odinger cat, modeling of energy renormalization phenomena in superconducting circuits experiments, a comprehensive characterization of multiphoton resonances in a driven transmon, a proposal for an inductively shunted transmon circuit, and a characterization of classical ultra-subharmonic bifurcation in driven oscillators. Lastly, we benchmark the performance of our method by comparing it with experimental data and exact Floquet numerical diagonalization.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Full characterization of measurement-induced transitions of a superconducting qubit

    quant-ph 2025-06 conditional novelty 8.0 of 10

    Readout-induced leakage in high-frequency transmon readout is dominated by inelastic single-photon Raman scattering, with rate proportional to drive power and to the dissipative impedance at the emitted-photon frequency.

  2. Exceeding the Parametric Drive Strength Threshold in Nonlinear Circuits

    quant-ph 2025-06 conditional novelty 6.0 of 10

    Strong low-frequency parametric drive on a transmon causes ionization above a threshold that matches Floquet predictions, limiting parametric gate speed.

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