Tsai, 2016 - Google Patents
Achievements and Outlook of Research on Quantum Information Systems Using Superconducting Quantum CircuitsTsai, 2016
- Document ID
- 1425146575073609365
- Author
- Tsai J
- Publication year
- Publication venue
- Principles and Methods of Quantum Information Technologies
External Links
Snippet
Research is currently being conducted on quantum information processing, which is expected to be the next-generation approach to information processing. The development of quantum computers using superconducting circuits is an area of particularly intensive …
- 238000005516 engineering process 0 abstract description 11
Classifications
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING; COUNTING
- G06N—COMPUTER SYSTEMS BASED ON SPECIFIC COMPUTATIONAL MODELS
- G06N99/00—Subject matter not provided for in other groups of this subclass
- G06N99/002—Quantum computers, i.e. information processing by using quantum superposition, coherence, decoherence, entanglement, nonlocality, teleportation
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B82—NANO-TECHNOLOGY
- B82Y—SPECIFIC USES OR APPLICATIONS OF NANO-STRUCTURES; MEASUREMENT OR ANALYSIS OF NANO-STRUCTURES; MANUFACTURE OR TREATMENT OF NANO-STRUCTURES
- B82Y10/00—Nano-technology for information processing, storage or transmission, e.g. quantum computing or single electron logic
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US7898282B2 (en) | Systems, devices, and methods for controllably coupling qubits | |
EP1875413B1 (en) | Qubit state copying | |
Steffen et al. | Quantum computing: An IBM perspective | |
Yang et al. | Possible realization of entanglement, logical gates, and quantum-information transfer with superconducting-quantum-interference-device qubits in cavity QED | |
Douçot et al. | Physical implementation of protected qubits | |
US20180032893A1 (en) | Quantum gates via multi-step adiabatic drag | |
US20080238531A1 (en) | Systems, devices, and methods for controllably coupling qubits | |
JP5313912B2 (en) | System, method and apparatus for local programming of quantum processor elements | |
AU2018230035A1 (en) | ZZZ coupler for superconducting qubits | |
Martinis | Superconducting qubits and the physics of Josephson junctions | |
Zhang et al. | Universal controlled-phase gate with cat-state qubits in circuit QED | |
Yang et al. | Implementing a multi-target-qubit controlled-not gate with logical qubits outside a decoherence-free subspace and its application in creating quantum entangled states | |
Su et al. | Single-step implementation of a hybrid controlled-not gate with one superconducting qubit simultaneously controlling multiple target cat-state qubits | |
Wu et al. | Dressed-state scheme for a fast CNOT gate | |
Liu et al. | One-step implementation of a multi-target-qubit controlled phase gate in a multi-resonator circuit QED system | |
Ma et al. | Shortcuts to adiabatic for implementing controlled-not gate with superconducting quantum interference device qubits | |
Migliore et al. | Quantum superpositions of clockwise and counterclockwise supercurrent states in the dynamics of an rf-SQUID exposed to a quantized electromagnetic field | |
Choi | Geometric quantum computation on solid-state qubits | |
Caligiuri | Quantum computation by means of josephson junctions made of coherent domains of liquid water | |
Zhang et al. | Generation of three-qubit Greenberger–Horne–Zeilinger states of superconducting qubits by using dressed states | |
Tsai | Achievements and Outlook of Research on Quantum Information Systems Using Superconducting Quantum Circuits | |
Bergou et al. | Solid State Qubits | |
Poudyal | Single-photon routing in multi-level chiral waveguide quantum electrodynamics ladders | |
Sebastian et al. | Compendium of Qubit Technologies in Quantum Computing | |
Wendin | Scalable solid–state qubits: challenging decoherence and read–out |