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纳米线:量子计算中的指数级加速。

Nanowires: Exponential speedup in quantum computing.

作者信息

Mimona Mariam Akter, Mobarak Md Hosne, Ahmed Emtiuz, Kamal Farzana, Hasan Mehedi

机构信息

Department of Computer Science & Engineering, IUBAT-International University of Business Agriculture and Technology, Bangladesh.

Department of Mechanical Engineering, IUBAT-International University of Business Agriculture and Technology, Bangladesh.

出版信息

Heliyon. 2024 May 25;10(11):e31940. doi: 10.1016/j.heliyon.2024.e31940. eCollection 2024 Jun 15.

Abstract

This review paper examines the crucial role of nanowires in the field of quantum computing, highlighting their importance as versatile platforms for qubits and vital building blocks for creating fault-tolerant and scalable quantum information processing systems. Researchers are studying many categories of nanowires, including semiconductor, superconducting, and topological nanowires, to explore their distinct quantum features that play a role in creating various qubit designs. The paper explores the interdisciplinary character of quantum computing, combining the fields of quantum physics and materials science. This text highlights the significance of quantum gate operations in manipulating qubits for computation, thus creating the toolbox of quantum algorithms. The paper emphasizes the key research areas in quantum technology, such as entanglement engineering, quantum error correction, and a wide range of applications spanning from encryption to climate change modeling. The research highlights the importance of tackling difficulties related to decoding mitigation, error correction, and hardware scalability to fully utilize the transformative potential of quantum computing in scientific, technical, and computational fields.

摘要

这篇综述文章探讨了纳米线在量子计算领域的关键作用,强调了它们作为量子比特通用平台的重要性以及作为构建容错和可扩展量子信息处理系统的重要基石。研究人员正在研究多种类型的纳米线,包括半导体、超导和拓扑纳米线,以探索它们在创建各种量子比特设计中发挥作用的独特量子特性。本文探讨了量子计算的跨学科性质,将量子物理和材料科学领域结合起来。这段文字强调了量子门操作在操纵量子比特进行计算中的重要性,从而创建了量子算法工具箱。文章强调了量子技术的关键研究领域,如纠缠工程、量子纠错以及从加密到气候变化建模等广泛的应用。该研究突出了应对与解码缓解、纠错和硬件可扩展性相关困难的重要性,以便在科学、技术和计算领域充分发挥量子计算的变革潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a05/11153239/f415af0f1971/gr1.jpg

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