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Dong Wang

Researcher at Anhui University

Publications -  204
Citations -  3693

Dong Wang is an academic researcher from Anhui University. The author has contributed to research in topics: Quantum entanglement & Entropic uncertainty. The author has an hindex of 29, co-authored 198 publications receiving 2896 citations. Previous affiliations of Dong Wang include Tsinghua University & Xiamen University.

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A plastic-composite-plastic structure high performance flexible energy harvester based on PIN-PMN-PT single crystal/epoxy 2-2 composite

TL;DR: In this article, a flexible piezoelectric energy harvester constituted by a Pb(In 1/2Nb1/2)O3-Pb(Mg 1/3Nb2/3)-O3 (PIN-PMN-PT) single crystal/epoxy 2-2 composite flake, a polyethylene terephthalate (PET) substrate, and a PET cover, which is capable of harvesting energy from biomechanical movements.
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Effect of local noise for achieving nonlocal advantage of quantum coherence

TL;DR: It is shown that, with the increase in noise parameter, it is difficult to achieve non local advantage of quantum coherence and when the noise parameter is beyond a certain value, nonlocal advantage ofquantum coherence cannot be achieved.
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Balancing the Expression and Production of a Heterodimeric Protein: Recombinant Agkisacutacin as a Novel Antithrombotic Drug Candidate

TL;DR: The recombinant Agkisacucetin possessed extremely similar binding affinity to recombinant GPIb and human platelets in in vitro assays, and its ristocetin-induced platelet aggregation activity ex vivo was identical to that of the extracted native Agkistrodon acutus, demonstrating that the yeast-derived Agk Isaccuetin could be an effective alternative to native AgKisacUCetin.
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Remote preparation of an arbitrary two-particle pure state via nonmaximally entangled states and positive operator-valued measurement

TL;DR: In this paper, a scheme for remotely preparing an arbitrary two-particle pure state is proposed by employing bipartite nonmaximally entangled states as quantum channels, and two auxiliary particles and an optimal positive operator-valued measurement are introduced.