Synthetic high angular momentum spin dynamics in a microwave oscillator
ORAL
Abstract
Spins and oscillators are foundational to physics and applied sciences. For quantum information, a spin 1/2 exemplifies the most basic unit, a qubit. High angular momentum spins (HAMSs) and harmonic oscillators provide multi-level manifolds (e.g., qudits) which have the potential for hardware-efficient protected encodings of quantum information and simulation of many-body quantum systems. In this talk, I will explain a new quantum control protocol that conceptually merges these disparate hardware platforms. We show how to modify a harmonic oscillator on-demand to implement a continuous range of generators associated with resonant driving of a harmonic qudit. We can interpret these dynamics as accomplishing linear and nonlinear control over a harmonic HAMS degree of freedom. The spin-like dynamics are verified by demonstration of linear spin coherent (SU(2)) rotations, nonlinear spin control, and comparison to other manifolds like simply-truncated oscillators. Our scheme allows the first universal control of such a harmonic qudit encoding: we use linear operations to accomplish four logical gates, and further show that nonlinear harmonicity-preserving operations complete the logical gate set. Our results show how motion on a closed Hilbert space can be useful for quantum information processing and opens the door to superconducting circuit simulations of higher angular momentum quantum magnetism. This talk is based on our work in doi.org/10.48550/arXiv.2405.15695.
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Publication: https://doi.org/10.48550/arXiv.2405.15695
Presenters
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Saswata Roy
Cornell University
Authors
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Saswata Roy
Cornell University
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Alen Senanian
Cornell University
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Christopher S Wang
University of Chicago
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Owen C Wetherbee
Cornell University
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Luojia Zhang
Cornell University
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Bradley G Cole
Syracuse University
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Clayton Larson
Syracuse University
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Eric Yelton
Syracuse University
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Kartikeya Arora
IIT (BHU)
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Peter L McMahon
Cornell University
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Britton L Plourde
Syracuse University
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Baptiste Royer
Université de Sherbrooke
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Valla Fatemi
Cornell University