Demonstration of controlled-NOT quantum gates on a pair of superconducting quantum bits
Top Cited Papers
- 1 June 2007
- journal article
- Published by Springer Nature in Nature
- Vol. 447 (7146) , 836-839
- https://doi.org/10.1038/nature05896
Abstract
Quantum computation requires quantum logic gates that use the interaction within pairs of quantum bits (qubits) to perform conditional operations. Superconducting qubits may offer an attractive route towards scalable quantum computing. In previous experiments on coupled superconducting qubits, conditional gate behaviour and entanglement were demonstrated. Here we demonstrate selective execution of the complete set of four different controlled-NOT (CNOT) quantum logic gates, by applying microwave pulses of appropriate frequency to a single pair of coupled flux qubits. All two-qubit computational basis states and their superpositions are used as input, while two independent single-shot SQUID detectors measure the output state, including qubit-qubit correlations. We determined the gate's truth table by directly measuring the state transfer amplitudes and by acquiring the relevant quantum phase shift using a Ramsey-like interference experiment. The four conditional gates result from the symmetry of the qubits in the pair: either qubit can assume the role of control or target, and the gate action can be conditioned on either the 0-state or the 1-state. These gates are now sufficiently characterized to be used in quantum algorithms, and together form an efficient set of versatile building blocks.Keywords
This publication has 16 references indexed in Scilit:
- Measurement of the Entanglement of Two Superconducting Qubits via State TomographyScience, 2006
- Four-Qubit Device with Mixed CouplingsPhysical Review Letters, 2006
- Spectroscopy on Two Coupled Superconducting Flux QubitsPhysical Review Letters, 2005
- Demonstration of conditional gate operation using superconducting charge qubitsNature, 2003
- Entangled Macroscopic Quantum States in Two Superconducting QubitsScience, 2003
- Coherent Quantum Dynamics of a Superconducting Flux QubitScience, 2003
- Rabi Oscillations in a Large Josephson-Junction QubitPhysical Review Letters, 2002
- Manipulating the Quantum State of an Electrical CircuitScience, 2002
- Josephson Persistent-Current QubitScience, 1999
- Coherent control of macroscopic quantum states in a single-Cooper-pair boxNature, 1999