From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications

In the aftermath of unparalleled disruptive technologies, the quantum realm has become a fundamental field of research due to unrivaled computational power and super-secure communication. In addition to conventional networks, a new word in the quantum domain is quantum network. The quantum network u...

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Published in:Heliyon
Main Authors: Muhammad Annas Khan, Salman Ghafoor, Syed Mohammad Hassan Zaidi, Haibat Khan, Arsalan Ahmad
Format: Article
Language:English
Published: Elsevier 2024-07-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844024103623
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author Muhammad Annas Khan
Salman Ghafoor
Syed Mohammad Hassan Zaidi
Haibat Khan
Arsalan Ahmad
author_facet Muhammad Annas Khan
Salman Ghafoor
Syed Mohammad Hassan Zaidi
Haibat Khan
Arsalan Ahmad
author_sort Muhammad Annas Khan
collection DOAJ
container_title Heliyon
description In the aftermath of unparalleled disruptive technologies, the quantum realm has become a fundamental field of research due to unrivaled computational power and super-secure communication. In addition to conventional networks, a new word in the quantum domain is quantum network. The quantum network uses quantum communication (QC) to send quantum information bits known as qubits, to predetermined destination nodes. It governs the new quantum mechanics notions like superposition, quantum entanglement, the no-cloning theorem, and quantum teleportation. Quantum communication, like classical communication, is prone to noise, which is known as quantum decoherence. Quantum decoherence is a significant barrier to the implementation of a global quantum network. It deteriorates the quantum information, causing it to lie in an undetermined state. Environmental factors that cause quantum entanglement loss are the key factors that cause qubits to lose their states. To mitigate the impact of quantum decoherence, quantum error correction codes (QECC) and entanglement distillation have proved their potential. They add extra qubits or maintain entanglements among quantum networks. This survey presents quantum mechanics principles, quantum decoherence, and techniques to mitigate the effect of quantum decoherence. At the end, we highlighted some challenges in the realization of the quantum network, along with some projected applications.
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spelling doaj-art-e054bc6fbe5f47e9aa30df2b1ecdcf782025-08-19T23:31:43ZengElsevierHeliyon2405-84402024-07-011014e3433110.1016/j.heliyon.2024.e34331From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applicationsMuhammad Annas Khan0Salman Ghafoor1Syed Mohammad Hassan Zaidi2Haibat Khan3Arsalan Ahmad4SEECS, National University of Sciences and Technology (NUST), H-12, Islamabad, PakistanSEECS, National University of Sciences and Technology (NUST), H-12, Islamabad, Pakistan; Corresponding author.Ghulam Ishaq Khan Institute of Engineering Sciences and Technology, PakistanCollege of Aeronautical Engineering, National University of Sciences and Technology (NUST), H-12, Islamabad, PakistanSEECS, National University of Sciences and Technology (NUST), H-12, Islamabad, PakistanIn the aftermath of unparalleled disruptive technologies, the quantum realm has become a fundamental field of research due to unrivaled computational power and super-secure communication. In addition to conventional networks, a new word in the quantum domain is quantum network. The quantum network uses quantum communication (QC) to send quantum information bits known as qubits, to predetermined destination nodes. It governs the new quantum mechanics notions like superposition, quantum entanglement, the no-cloning theorem, and quantum teleportation. Quantum communication, like classical communication, is prone to noise, which is known as quantum decoherence. Quantum decoherence is a significant barrier to the implementation of a global quantum network. It deteriorates the quantum information, causing it to lie in an undetermined state. Environmental factors that cause quantum entanglement loss are the key factors that cause qubits to lose their states. To mitigate the impact of quantum decoherence, quantum error correction codes (QECC) and entanglement distillation have proved their potential. They add extra qubits or maintain entanglements among quantum networks. This survey presents quantum mechanics principles, quantum decoherence, and techniques to mitigate the effect of quantum decoherence. At the end, we highlighted some challenges in the realization of the quantum network, along with some projected applications.http://www.sciencedirect.com/science/article/pii/S2405844024103623Quantum networkQuantum communicationQuantum teleportationQuantum error correction codes
spellingShingle Muhammad Annas Khan
Salman Ghafoor
Syed Mohammad Hassan Zaidi
Haibat Khan
Arsalan Ahmad
From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
Quantum network
Quantum communication
Quantum teleportation
Quantum error correction codes
title From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
title_full From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
title_fullStr From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
title_full_unstemmed From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
title_short From quantum communication fundamentals to decoherence mitigation strategies: Addressing global quantum network challenges and projected applications
title_sort from quantum communication fundamentals to decoherence mitigation strategies addressing global quantum network challenges and projected applications
topic Quantum network
Quantum communication
Quantum teleportation
Quantum error correction codes
url http://www.sciencedirect.com/science/article/pii/S2405844024103623
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