Researchers use nuclear spins neighboring a lanthanide atom in a crystal to create Greenberger-Horne-Zeilinger quantum states
Researchers have experimentally demonstrated a new quantum information storage protocol that can be used to create Greenberger-Horne-Zeilinger (GHZ) quantum states. There is a great deal of interest in these complex entangled states because of their potential use in quantum sensing and quantum error correction applications. Credit: MAAYAN VISUALS Researchers have experimentally demonstrated a new quantum […]
Researchers have experimentally demonstrated a new quantum information storage protocol that can be used to create Greenberger-Horne-Zeilinger (GHZ) quantum states. There is a great deal of interest in these complex entangled states because of their potential use in quantum sensing and quantum error correction applications.
Credit: MAAYAN VISUALS
Researchers have experimentally demonstrated a new quantum information storage protocol that can be used to create Greenberger-Horne-Zeilinger (GHZ) quantum states. There is a great deal of interest in these complex entangled states because of their potential use in quantum sensing and quantum error correction applications.
Chun-Ju Wu from the California Institute of Technology will present this research at the Optica Quantum 2.0 Conference and Exhibition, as a hybrid event 18-22 June in Denver, Colorado.
Quantum-based technologies store information in the form of qubits, the quantum equivalent of the binary bits used in classical computing. GHZ states take this a step further by entangling three or more qubits. This increased complexity can be used to store more information, thus boosting precision and performance in applications such as quantum sensing and networking.
Systems where qubits surround a central qubit that can be controlled provide a natural platform to prepare and utilize such states. For these experiments, the researchers used a single ytterbium ion qubit that can be controlled with lasers and on-chip electrodes surrounded by nuclear spins inside a crystal.
Specifically, the researchers utilized a highly localized ensemble of four deterministically and symmetrically positioned vanadium nuclear spins. They developed the control of these spins and demonstrated the ability to store and retrieve quantum information in the form of GHZ states.
Furthermore, they leveraged the symmetry of their central spin system to intrinsically protect the stored quantum information from correlated magnetic field noise. This is a critical demonstration of resilience, necessary for real-world applications.
Their results demonstrate the possibility of harnessing complex nuclear-spin systems to enhance the functionality of quantum nodes.
In the future, the capability of this system will be improved by using additional ensembles of vanadium nuclear spins. Developing novel pulsed control sequences and hardware with improved control will be used to achieve these goals.
About Optica Quantum 2.0 Conference and Exhibition
Pioneers in Quantum, including 2022 Nobel Laureates, to headline Optica’s Quantum 2.0 Conference
Quantum technology continues to advance rapidly in areas like computing, communications and telescopy. Thanks to investments from both the public and private sectors, developing new quantum technology presents opportunities for the optics and photonics community. Quantum 2.0 will provide a platform to discuss new advancements in the quantum space and to hear from the pioneers who have made much of this technology possible. 2022 Physics Nobel Laureates Alain Aspect, John F. Clauser and Anton Zeilinger are set to headline a Nobel symposium at Quantum 2.0. Media registration is free with credential. Digital assets are available as requested.
About Optica
Optica (formerly OSA), Advancing Optics and Photonics Worldwide, is the society dedicated to promoting the generation, application, archiving and dissemination of knowledge in the field. Founded in 1916, it is the leading organization for scientists, engineers, business professionals, students and others interested in the science of light. Optica’s renowned publications, meetings, online resources and in-person activities fuel discoveries, shape real-life applications and accelerate scientific, technical and educational achievement. Discover more at: Optica.org.
Media Contact
mediarelations@optica.org
Method of Research
Computational simulation/modeling
Subject of Research
Not applicable
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