Markus Oppliger
ETH Zurich
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Publication
Featured researches published by Markus Oppliger.
Nature | 2013
L. Steffen; Yves Salathe; Markus Oppliger; Philipp Kurpiers; M. Baur; C. Lang; C. Eichler; G. Puebla-Hellmann; Arkady Fedorov; A. Wallraff
Transferring the state of an information carrier from a sender to a receiver is an essential primitive in both classical and quantum communication and information processing. In a quantum process known as teleportation the unknown state of a quantum bit can be relayed to a distant party using shared entanglement and classical information. Here we present experiments in a solid-state system based on superconducting quantum circuits demonstrating the teleportation of the state of a qubit at the macroscopic scale. In our experiments teleportation is realized deterministically with high efficiency and achieves a high rate of transferred qubit states. This constitutes a significant step towards the realization of repeaters for quantum communication at microwave frequencies and broadens the tool set for quantum information processing with superconducting circuits.Engineered macroscopic quantum systems based on superconducting electronic circuits are attractive for experimentally exploring diverse questions in quantum information science. At the current state of the art, quantum bits (qubits) are fabricated, initialized, controlled, read out and coupled to each other in simple circuits. This enables the realization of basic logic gates, the creation of complex entangled states and the demonstration of algorithms or error correction. Using different variants of low-noise parametric amplifiers, dispersive quantum non-demolition single-shot readout of single-qubit states with high fidelity has enabled continuous and discrete feedback control of single qubits. Here we realize full deterministic quantum teleportation with feed-forward in a chip-based superconducting circuit architecture. We use a set of two parametric amplifiers for both joint two-qubit and individual qubit single-shot readout, combined with flexible real-time digital electronics. Our device uses a crossed quantum bus technology that allows us to create complex networks with arbitrary connecting topology in a planar architecture. The deterministic teleportation process succeeds with order unit probability for any input state, as we prepare maximally entangled two-qubit states as a resource and distinguish all Bell states in a single two-qubit measurement with high efficiency and high fidelity. We teleport quantum states between two macroscopic systems separated by 6 mm at a rate of 104 s−1, exceeding other reported implementations. The low transmission loss of superconducting waveguides is likely to enable the range of this and other schemes to be extended to significantly larger distances, enabling tests of non-locality and the realization of elements for quantum communication at microwave frequencies. The demonstrated feed-forward may also find application in error correction schemes.
Physical Review X | 2015
Yves Salathe; Mintu Mondal; Markus Oppliger; Johannes Heinsoo; Philipp Kurpiers; Anton Potočnik; Antonio Mezzacapo; Urtzi Las Heras García; Lucas Lamata Manuel; Enrique Leónidas Solano Villanueva; Stefan Filipp; A. Wallraff
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 which are polynomial in the number of spins and indicates a path towards the controlled simulation of general spin dynamics in superconducting qubit platforms.
Physical review applied | 2017
Theodore Walter; Philipp Kurpiers; Simone Gasparinetti; Paul Magnard; Anton Potočnik; Yves Salathe; Marek Pechal; Mintu Mondal; Markus Oppliger; C. Eichler; A. Wallraff
The speed of quantum gates and measurements is a decisive factor for the overall fidelity of quantum protocols when performed on physical qubits with finite coherence time. Reducing the time required to distinguish qubit states with high fidelity is therefore a critical goal in quantum information science. The state-of-the-art readout of superconducting qubits is based on the dispersive interaction with a readout resonator. Here, we bring this technique to its current limit and demonstrate how the careful design of system parameters leads to fast and high-fidelity measurements without affecting qubit coherence. We achieve this result by increasing the dispersive interaction strength, by choosing an optimal linewidth of the readout resonator, by employing a Purcell filter, and by utilizing phase-sensitive parametric amplification. In our experiment, we measure 98.25% readout fidelity in only 48 ns, when minimizing read-out time, and 99.2% in 88 ns, when maximizing the fidelity, limited predominantly by the qubit lifetime of 7.6 us. The presented scheme is also expected to be suitable for integration into a multiplexed readout architecture.
Physical review applied | 2016
Marek Pechal; Jean-Claude Besse; M. Mondal; Markus Oppliger; Simone Gasparinetti; A. Wallraff
A switch capable of routing microwave signals at cryogenic temperatures is a desirable component for state-of-the-art experiments in many fields of applied physics, including but not limited to quantum information processing, communication and basic research in engineered quantum systems. Conventional mechanical switches provide low insertion loss but disturb operation of dilution cryostats and the associated experiments by heat dissipation. Switches based on semiconductors or microelectromechanical systems have a lower thermal budget but are not readily integrated with current superconducting circuits. Here we design and test an on-chip switch built by combining tunable transmission-line resonators with microwave beam-splitters. The device is superconducting and as such dissipates a negligible amount of heat. It is compatible with current superconducting circuit fabrication techniques, operates with a bandwidth exceeding
Nature Communications | 2016
Markus Jerger; Yarema Reshitnyk; Markus Oppliger; Anton Potočnik; Mintu Mondal; A. Wallraff; Kenneth Goodenough; Stephanie Wehner; Kristinn Juliusson; Nathan K. Langford; Arkady Fedorov
100\,\mathrm{MHz}
Bulletin of the American Physical Society | 2017
Arkady Fedorov; Markus Jerger; Yarema Reshitnyk; Markus Oppliger; Anton Potočnik; Mintu Mondal; A. Wallraff; Kenneth Goodenough; Stephanie Wehner; Kristinn Juliusson; Nathan K. Langford
, is capable of handling photon fluxes on the order of
Bulletin of the American Physical Society | 2016
Marek Pechal; Simone Gasparinetti; Mintu Mondal; Markus Oppliger; A. Wallraff
10^{5}\,\mu\mathrm{s}^{-1}
Bulletin of the American Physical Society | 2016
Michele C. Collodo; Anton Poto v{c}nik; Antonio Rubio Abadal; Mintu Mondal; Markus Oppliger; A. Wallraff
, equivalent to powers exceeding
Bulletin of the American Physical Society | 2015
Markus Oppliger; Yves Salathe; Mintu Mondal; Johannes Heinsoo; Philipp Kurpiers; Anton Potočnik; Stefan Filipp; A. Wallraff; Antonio Mezzacapo; Urtzi Las Heras; Lucas Lamata; E. Solano
-90\,\mathrm{dBm}
Bulletin of the American Physical Society | 2014
Yves Salathe; Mintu Mondal; Philipp Kurpiers; Markus Oppliger; L. Steffen; Stefan Filipp; A. Wallraff; A. Mezzacapo; U. Las Heras; Lucas Lamata; E. Solano
, and can be switched within approximately