Irfan Siddiqi

The superconducting grid-states qubit

Long B. Nguyen [1,2], Hyunseong Kim [1,2], Dat T. Le [3], Thomas Ersevim [1], Sai P. Chitta [4], Trevor Chistolini [1,2], Christian Jünger, W. Clarke Smith [5], T. M. Stace [3], Jens Koch [4], David I. Santiago [1,2], Irfan Siddiqi [1,2]

Abstract

Decoherence errors arising from noisy environments remain a central obstacle to progress in quantum computation and information processing. Quantum error correction (QEC) based on the Gottesman-Kitaev-Preskill (GKP) protocol offers a powerful strategy to overcome this challenge, with successful demonstrations in trapped ions, superconducting circuits, and photonics. Beyond active QEC, a compelling alternative is to engineer Hamiltonians that intrinsically enforce stabilizers, offering passive protection akin to topological models. Inspired by the GKP encoding scheme, we implement a superconducting qubit whose eigenstates form protected grid states - long envisioned but not previously realized - by integrating an effective Cooper-quartet junction with a quantum phase-slip element embedded in a high-impedance circuit. Spectroscopic measurements reveal pairs of degenerate states separated by large energy gaps, in excellent agreement with theoretical predictions. Remarkably, our observations indicate that the circuit tolerates small disorders and gains robustness against environmental noise as its parameters approach the ideal regime, establishing a new framework for exploring superconducting hardware. These findings also showcase the versatility of the superconducting circuit toolbox, setting the stage for future exploration of advanced solid-state devices with emergent properties.

Heisenberg-limited calibration of entangling gates with robust phase estimation

Kenneth Rudinger [1], J. P. Marceaux [1], Akel Hashim [3], David I. Santiago [4], Irfan Siddiqi [3,4,5], Kevin C. Young [1]

Abstract

The calibration of high-quality two-qubit entangling gates is an essential component in engineering large-scale, fault-tolerant quantum computers. However, many standard calibration techniques are based on randomized circuits that are only quadratically sensitive to calibration errors. As a result, these approaches are inefficient, requiring many experimental shots to achieve acceptable performance. In this work, we demonstrate that robust phase estimation can enable high-precision, Heisenberg-limited estimates of coherent errors in multi-qubit gates. Equipped with an efficient estimator, the calibration problem may be reduced to a simple optimization loop that minimizes the estimated coherent error. We experimentally demonstrate our calibration protocols by improving the operation of a two-qubit controlled-Z gate on a superconducting processor, and we validate the improved performance with gate set tomography. Our methods are applicable to gates in other quantum hardware platforms such as ion traps and neutral atoms, and on other multi-qubit gates, such as CNOT or iSWAP.

Digital Quantum Simulation of Cavity Quantum Electrodynamics: Insights from Superconducting and Trapped Ion Quantum Testbeds

Alex H. Rubin [1,2], Brian Marinelli [3,4], Victoria A. Norman [1,2], Zainab Rizvi [5], Ashlyn D. Burch [6], Ravi K. Naik [3,4], John Mark Kreikebaum [3,7], Matthew N. H. Chow [6], Daniel S. Lobser [6], Melissa C. Revelle [6], Christopher G. Yale [6], Megan Ivory [6], David I. Santiago [3,4], Christopher Spitzer [3,4], Marina Krstic-Marinkovic [8], Susan M. Clark [6], Irfan Siddiqi [3,4], Marina Radulaski [1]

Abstract

We explore the potential for hybrid development of quantum hardware where currently available quantum computers simulate open Cavity Quantum Electrodynamical (CQED) systems for applications in optical quantum communication, simulation and computing. Our simulations make use of a recent quantum algorithm that maps the dynamics of a singly excited open Tavis-Cummings model containing N atoms coupled to a lossy cavity. We report the results of executing this algorithm on two noisy intermediate-scale quantum computers: a superconducting processor and a trapped ion processor, to simulate the population dynamics of an open CQED system featuring N = 3 atoms. By applying technology-specific transpilation and error mitigation techniques, we minimize the impact of gate errors, noise, and decoherence in each hardware platform, obtaining results which agree closely with the exact solution of the system. These results can be used as a recipe for efficient and platform-specific quantum simulation of cavity-emitter systems on contemporary and future quantum computers.

Experimental Characterization of Crosstalk Errors with Simultaneous Gate Set Tomography

Kenneth Rudinger [1], Craig W. Hogle [2], Ravi K. Naik [3], Akel Hashim [3], Daniel Lobser [2], David I. Santiago [3,4], Matthew D. Grace [1], Erik Nielsen [1], Timothy Proctor [1], Stefan Seritan [1], Susan M. Clark [2], Robin Blume-Kohout [1], Irfan Siddiqi [3,4,5], Kevin C. Young [1]

Abstract

Crosstalk is a leading source of failure in multiqubit quantum information processors. It can arise from a wide range of disparate physical phenomena, and can introduce subtle correlations in the errors experienced by a device. Several hardware characterization protocols are able to detect the presence of crosstalk, but few provide sufficient information to distinguish various crosstalk errors from one another. In this article we describe how gate set tomography, a protocol for detailed characterization of quantum operations, can be used to identify and characterize crosstalk errors in quantum information processors. We demonstrate our methods on a two-qubit trapped-ion processor and a two-qubit subsystem of a superconducting transmon processor.