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Da-Wei Wang

Researcher at Zhejiang University

Publications -  81
Citations -  2026

Da-Wei Wang is an academic researcher from Zhejiang University. The author has contributed to research in topics: Photon & Qubit. The author has an hindex of 19, co-authored 78 publications receiving 1410 citations. Previous affiliations of Da-Wei Wang include Shanxi University & Chinese Academy of Sciences.

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Optical Diode Made from a Moving Photonic Crystal

TL;DR: This work proposes an all-optical optical diode which requires neither magnetic fields nor strong input fields, and is based on a "moving" photonic crystal generated in a three-level electromagnetically induced transparency medium.
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Generation of multicomponent atomic Schrödinger cat states of up to 20 qubits.

TL;DR: Deterministic generation of an 18-qubit Greenberger-Horne-Zeilinger (GHZ) state and multicomponent atomic Schrödinger cat states of up to 20 qubits on a quantum processor, which features 20 superconducting qubits interconnected by a bus resonator is reported.
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Observation of Topologically Protected Edge States in a Photonic Two-Dimensional Quantum Walk.

TL;DR: This work employs discrete-time quantum walks to investigate a nontrivial topological effect unique to a two-dimensional periodically driven system: chiral edge states can exist at the interface of Floquet insulators whose Chern numbers vanish.
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Observation of multi-component atomic Schr\"odinger cat states of up to 20 qubits

TL;DR: In this article, the authors report on deterministic generation of 18-qubit genuinely entangled Greenberger-Horne-Zeilinger (GHZ) state and multi-component atomic Schrodinger cat states of up to 20 qubits on a quantum processor, which features 20 superconducting qubits interconnected by a bus resonator.
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Controllable Switching between Superradiant and Subradiant States in a 10-qubit Superconducting Circuit.

TL;DR: In this paper, a phase gate was applied on each qubit to switch the single collective excitation between superradiant and sub-radiant states, which is a step towards coherent control of collective radiation and has promising applications in quantum information processing.