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Ze-Liang Xiang

Researcher at Sun Yat-sen University

Publications -  24
Citations -  2214

Ze-Liang Xiang is an academic researcher from Sun Yat-sen University. The author has contributed to research in topics: Quantum information & Quantum network. The author has an hindex of 11, co-authored 15 publications receiving 1805 citations. Previous affiliations of Ze-Liang Xiang include Fudan University & Global Alliance in Management Education.

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Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems

TL;DR: Hybrid quantum circuits combine two or more physical systems, with the goal of harnessing the advantages and strengths of the different systems in order to better explore new phenomena and potentially bring about novel quantum technologies as discussed by the authors.
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Hybrid Quantum Device with Nitrogen-Vacancy Centers in Diamond Coupled to Carbon Nanotubes.

TL;DR: It is shown that nitrogen-vacancy centers in diamond interfaced with a suspended carbon nanotube carrying a dc current can facilitate a spin-nanomechanical hybrid device.
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Ultrastrong-coupling phenomena beyond the Dicke model

TL;DR: In this article, effective light-matter interactions in a circuit QED system consisting of a single $LC$ resonator coupled symmetrically to multiple superconducting qubits are studied.
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Hybrid quantum circuit consisting of a superconducting flux qubit coupled to a spin ensemble and a transmission-line resonator

TL;DR: In this article, a hybrid quantum circuit for achieving a strong coupling between a spin ensemble and a transmission-line resonator via a superconducting flux qubit used as a data bus was proposed.
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Quantum memory using a hybrid circuit with flux qubits and nitrogen-vacancy centers

TL;DR: In this article, a hybrid quantum architecture including two coupled flux qubits and a nitrogen-vacancy center ensemble (NVE) is proposed to realize high-fidelity quantum storage.