Digital Quantum Simulation of Spin Models with Circuit Quantum Electrodynamics
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Date
2015-06-17Author
Salathé, Y.
Mondal, M.
Oppliger, M.
Heinsoo, J.
Kurpiers, P.
Potočnik, A.
Mezzacapo, Antonio
Las Heras García, Urtzi
Filipp, S.
Wallraff, A.
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Physical Review X 5(2) : (2015) // Article ID 021027
Abstract
Systems of interacting quantum spins show a rich spectrum of quantum phases and display interesting many-body dynamics. Computing characteristics of even small systems on conventional computers poses significant challenges. A quantum simulator has the potential to outperform standard computers in calculating the evolution of complex quantum systems. Here, we perform a digital quantum simulation of the paradigmatic Heisenberg and Ising interacting spin models using a two transmon-qubit circuit quantum electrodynamics setup. We make use of the exchange interaction naturally present in the simulator to construct a digital decomposition of the model-specific evolution and extract its full dynamics. This approach is universal and efficient, employing only resources that are polynomial in the number of spins, and indicates a path towards the controlled simulation of general spin dynamics in superconducting qubit platforms.