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Dual Quantum Zeno Superdense Coding.
Fakhar Zaman1, Youngmin Jeong2, Hyundong Shin3
1Department of Electronic Engineering, Kyung Hee University, Yongin-si, 17104, Korea.
This study introduces a novel quantum superdense coding protocol using a dual quantum Zeno (DQZ) gate. This method enhances the efficiency of encoding classical messages into qubits via preshared entanglement.
Area of Science:
- Quantum Information Science
- Quantum Communication
Background:
- Quantum superdense coding allows transmitting two classical bits using one qubit and preshared entanglement.
- Complete Bell-state analysis is crucial for maximizing the efficiency of quantum communication protocols.
Purpose of the Study:
- To develop an advanced superdense coding protocol leveraging a dual quantum Zeno (DQZ) gate.
- To fully exploit quantum superdense coding capabilities through complete Bell-state analysis.
Main Methods:
- Implementation of a novel superdense coding protocol utilizing a dual quantum Zeno (DQZ) gate.
- Verification of the DQZ gate's ability to distinguish orthonormal Bell states in a semi-counterfactual way.
- Analysis of throughput efficiency based on cycle numbers in the Bell-state analyzer.
Main Results:
- The dual quantum Zeno (DQZ) gate facilitates the distinguishability of Bell states between remote parties.
- The proposed DQZ superdense coding protocol demonstrates high throughput efficiency.
- Efficiency scales favorably with the number of cycles in the Bell-state analysis.
Conclusions:
- The DQZ gate significantly enhances quantum superdense coding by improving Bell-state distinguishability.
- This protocol offers a pathway to more efficient and robust quantum communication systems.
- The findings contribute to the advancement of practical quantum information processing.
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