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Guang-Can Guo

Researcher at University of Science and Technology of China

Publications -  545
Citations -  15193

Guang-Can Guo is an academic researcher from University of Science and Technology of China. The author has contributed to research in topics: Quantum entanglement & Qubit. The author has an hindex of 53, co-authored 545 publications receiving 11582 citations. Previous affiliations of Guang-Can Guo include Center for Excellence in Education & Chinese Academy of Sciences.

Papers
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Quantum Secure Direct Communication with Quantum Memory

TL;DR: This Letter reports the experimental demonstration of QSDC with state-of-the-art atomic quantum memory for the first time in principle and demonstrates a potential application for long-distance quantum communication in a quantum network.
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Experimental control of the transition from Markovian to non-Markovian dynamics of open quantum systems

TL;DR: In this paper, the decoherence in a single photon is controlled by rotating an optical filter, which can be used to tune the information flow between the photon and its environment.
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Preserving Coherence in Quantum Computation by Pairing Quantum Bits

TL;DR: In this article, a scheme for protecting quantum states from both independent and cooperative decoherence is proposed by pairing each qubit (two-state quantum system) with an ancilla qubit and encoding the states of the qubits into corresponding coherence-preserving states of qubit pairs.
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Probabilistic Cloning and Identification of Linearly Independent Quantum States

TL;DR: In this article, the authors constructed a probabilistic quantum cloning machine by a general unitary reduction operation, which yielded faithful copies of the input states with a postselection of the measurement results.
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Quantum secret sharing without entanglement

TL;DR: An idea to directly encode the qubit of quantum key distributions, and then present a quantum secret sharing scheme where only product states are employed, where the theoretic efficiency is doubled to approach 100%.