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用于量子信息处理的工程化胶体半导体纳米晶体。

Engineering colloidal semiconductor nanocrystals for quantum information processing.

作者信息

Almutlaq Jawaher, Liu Yuan, Mir Wasim J, Sabatini Randy P, Englund Dirk, Bakr Osman M, Sargent Edward H

机构信息

Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, USA.

Department of Electrical and Computer Engineering, University of Toronto, Toronto, Ontario, Canada.

出版信息

Nat Nanotechnol. 2024 Aug;19(8):1091-1100. doi: 10.1038/s41565-024-01606-4. Epub 2024 Mar 21.

Abstract

Quantum information processing-which relies on spin defects or single-photon emission-has shown quantum advantage in proof-of-principle experiments including microscopic imaging of electromagnetic fields, strain and temperature in applications ranging from battery research to neuroscience. However, critical gaps remain on the path to wider applications, including a need for improved functionalization, deterministic placement, size homogeneity and greater programmability of multifunctional properties. Colloidal semiconductor nanocrystals can close these gaps in numerous application areas, following years of rapid advances in synthesis and functionalization. In this Review, we specifically focus on three key topics: optical interfaces to long-lived spin states, deterministic placement and delivery for sensing beyond the standard quantum limit, and extensions to multifunctional colloidal quantum circuits.

摘要

量子信息处理——依赖于自旋缺陷或单光子发射——已在原理验证实验中展现出量子优势,这些实验包括从电池研究到神经科学等应用领域中对电磁场、应变和温度的微观成像。然而,在通往更广泛应用的道路上仍存在关键差距,包括需要改进功能化、确定性放置、尺寸均匀性以及多功能特性的更高可编程性。经过多年在合成和功能化方面的快速发展,胶体半导体纳米晶体可以在众多应用领域弥补这些差距。在本综述中,我们特别关注三个关键主题:与长寿命自旋态的光学接口、超越标准量子极限的传感的确定性放置和递送,以及多功能胶体量子电路的扩展。

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