Small logical qubit architecture based on strong interactions and
many-body dynamical decoupling
- URL: http://arxiv.org/abs/2212.04588v1
- Date: Thu, 8 Dec 2022 22:33:01 GMT
- Title: Small logical qubit architecture based on strong interactions and
many-body dynamical decoupling
- Authors: Eliot Kapit, Vadim Oganesyan
- Abstract summary: We propose a novel superconducting logical qubit architecture, called the Cold Echo Qubit (CEQ)
The CEQ operates fully autonomously, requiring no measurement or feedback, and is compatible with relatively strong interaction elements.
It is expected to roughly double the coherence of its two-fluxonium counterpart.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We propose a novel superconducting logical qubit architecture, called the
Cold Echo Qubit (CEQ), which is capable of preserving quantum information for
much longer timescales than any of its component parts. The CEQ operates fully
autonomously, requiring no measurement or feedback, and is compatible with
relatively strong interaction elements, allowing for fast, high fidelity
logical gates between multiple CEQ's. Its quantum state is protected by a
combination of strong interactions and microwave driving, which implements a
form of many-body dynamical decoupling to suppress phase noise. Estimates based
on careful theoretical analysis and numerical simulations predict improvements
in lifetimes and gate fidelities by an order of magnitude or more compared to
the current state of the art, assuming no improvements in base coherence. Here,
we consider the simplest possible implementation of the CEQ, using a pair of
fluxonium qubits shunted through a shared mutual inductance. While not
necessarily the best possible implementation, it is the easiest to test
experimentally and should display coherence well past breakeven (as compared to
the limiting coherence times of its components). A more complex three-node
circuit is also presented; it is expected to roughly double the coherence of
its two-fluxonium counterpart.
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