6 citations · 7 across the 4 of their papers we have counts for
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Quantum computation with prethreshold superconducting qubits: Single-excitation subspace approach
Andrei Galiautdinov, Michael R. Geller
We describe an alternative approach to quantum computation that is ideally suited for today's sub-threshold-fidelity qubits, and which can be applied to a family of hardware models…
Controlled-NOT gate design for Josephson phase qubits with tunable inductive coupling: Weyl chamber steering and area theorem
Andrei Galiautdinov, Michael Geller
Superconducting qubits with tunable coupling are ideally suited for fast and accurate implementation of quantum logic. Here we present a simple approach, based on Weyl chamber stee…
Quantum computing with superconductors I: Architectures
Michael R. Geller, Emily J. Pritchett, Andrew T. Sornborger +1
Josephson junctions have demonstrated enormous potential as qubits for scalable quantum computing architectures. Here we discuss the current approaches for making multi-qubit circu…
Nanomechanical Quantum Memory for Superconducting Qubits
Emily J. Pritchett, Michael R. Geller
Many protocols for quantum computation require a quantum memory element to store qubits. We discuss the accuracy with which quantum states prepared in a Josephson junction qubit ca…
Superconducting Qubits Coupled to Nanoelectromechanical Resonators: An Architecture for Solid-State Quantum Information Processing
Michael R. Geller, Andrew N. Cleland
We describe the design for a scalable, solid-state quantum-information-processing architecture based on the integration of GHz-frequency nanomechanical resonators with Josephson tu…
Superconducting Phase Qubit Coupled to a Nanomechanical Resonator: Beyond the Rotating-Wave Approximation
Andrew T. Sornborger, Andrew N. Cleland, Michael R. Geller
We consider a simple model of a Josephson junction phase qubit coupled to a solid-state nanoelectromechanical resonator. This and many related qubit-resonator models are analogous…