We present an encoded hybrid quantum repeater scheme using qubit-repetition and Calderbank-Shor-Steane codes. For the case of repetition codes, we propose an explicit implementation of the quantum error-correction protocol. Moreover, we analyze the entangled-pair distribution rate for the hybrid quantum repeater with encoding and we clearly identify trade-offs between the efficiency of the codes, the memory-decoherence time, and the local gate errors. Finally, we show that in the presence of reasonable imperfections our system can achieve rates of roughly 24 Hz per memory for 20 km repeater spacing, a final distance of 1280 km, and final fidelity of about 0.95
We propose a postselection technique, based on quantum error detection, for quantum key distribution...
Quantum repeaters (QRs) provide a way of enabling long distance quantum communication by establishin...
We present a quantum repeater scheme based on the recently proposed qubit amplifier [N. Gisin, S. Pi...
We present an encoded hybrid quantum repeater scheme using qubit-repetition and Calderbank-Shor-Stea...
We propose an approach to implement quantum repeaters for long-distance quantum communication. Our p...
We present a detailed rate analysis for a hybrid quantum repeater assuming perfect memories and usin...
We present a detailed rate analysis for a hybrid quantum repeater assuming perfect memories and usin...
An improvement to the existing one-way quantum repeater network using the tree cluster state as the ...
Quantum networks allow for the transmission of quantum information between physically separated quan...
Quantum networks allow for the transmission of quantum information between physically separated quan...
Quantum networks allow for the transmission of quantum information between physically separated quan...
The future of quantum repeater networking will require interoperability between various error-correc...
We propose an architecture of quantum-error-correction-based quantum repeaters that combines techniq...
Abstract We propose an architecture of quantum-error-correction-based quantum repeaters that combine...
We investigate the influence of memory errors in the quantum repeater scheme for long-range quantum ...
We propose a postselection technique, based on quantum error detection, for quantum key distribution...
Quantum repeaters (QRs) provide a way of enabling long distance quantum communication by establishin...
We present a quantum repeater scheme based on the recently proposed qubit amplifier [N. Gisin, S. Pi...
We present an encoded hybrid quantum repeater scheme using qubit-repetition and Calderbank-Shor-Stea...
We propose an approach to implement quantum repeaters for long-distance quantum communication. Our p...
We present a detailed rate analysis for a hybrid quantum repeater assuming perfect memories and usin...
We present a detailed rate analysis for a hybrid quantum repeater assuming perfect memories and usin...
An improvement to the existing one-way quantum repeater network using the tree cluster state as the ...
Quantum networks allow for the transmission of quantum information between physically separated quan...
Quantum networks allow for the transmission of quantum information between physically separated quan...
Quantum networks allow for the transmission of quantum information between physically separated quan...
The future of quantum repeater networking will require interoperability between various error-correc...
We propose an architecture of quantum-error-correction-based quantum repeaters that combines techniq...
Abstract We propose an architecture of quantum-error-correction-based quantum repeaters that combine...
We investigate the influence of memory errors in the quantum repeater scheme for long-range quantum ...
We propose a postselection technique, based on quantum error detection, for quantum key distribution...
Quantum repeaters (QRs) provide a way of enabling long distance quantum communication by establishin...
We present a quantum repeater scheme based on the recently proposed qubit amplifier [N. Gisin, S. Pi...