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基于自由电子的量子纳米光子学路线图

Roadmap for Quantum Nanophotonics with Free Electrons.

作者信息

García de Abajo F Javier, Polman Albert, Velasco Cruz I, Kociak Mathieu, Tizei Luiz H G, Stéphan Odile, Meuret Sophie, Sannomiya Takumi, Akiba Keiichirou, Auad Yves, Feist Armin, Ropers Claus, Baum Peter, Gaida John H, Sivis Murat, Lourenço-Martins Hugo, Serafini Luca, Verbeeck Johan, Konečná Andrea, Talebi Nahid, Ferrari Beatrice Matilde, Duncan Cameron J R, Bravi Maria Giulia, Ostroman Irene, Vanacore Giovanni Maria, Nussinson Ethan, Ruimy Ron, Adiv Yuval, Niedermayr Arthur, Kaminer Ido, Di Giulio Valerio, Kfir Ofer, Zhao Zhexin, Shiloh Roy, Morimoto Yuya, Kozák Martin, Hommelhoff Peter, Barantani Francesco, Carbone Fabrizio, Chahshouri Fatemeh, Albrecht Wiebke, Rey Sergio, Coenen Toon, Kieft Erik, Lalandec Robert Hoelen L, de Jong Frank, Solà-Garcia Magdalena

机构信息

ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.

ICREA-Institució Catalana de Recerca i Estudis Avançats, Passeig Lluís Companys 23, 08010 Barcelona, Spain.

出版信息

ACS Photonics. 2025 Jul 15;12(9):4760-4817. doi: 10.1021/acsphotonics.5c00585. eCollection 2025 Sep 17.

Abstract

Over the past century, continuous advancements in electron microscopy have enabled the synthesis, control, and characterization of high-quality free-electron beams. These probes carry an evanescent electromagnetic field that can drive localized excitations and provide high-resolution information on material structures and their optical responses, currently reaching the sub-Å and few-meV regime. Moreover, combining free electrons with pulsed light sources in ultrafast electron microscopy adds temporal resolution in the subfemtosecond range while offering enhanced control of the electron wave function. Beyond their exceptional capabilities for time-resolved spectromicroscopy, free electrons are emerging as powerful tools in quantum nanophotonics, on par with photons in their ability to carry and transfer quantum information, create entanglement within and with a specimen, and reveal previously inaccessible details on nanoscale quantum phenomena. This Roadmap outlines the current state of this rapidly evolving field, highlights key challenges and opportunities, and discusses future directions through a collection of topical sections prepared by leading experts.

摘要

在过去的一个世纪里,电子显微镜的不断进步使得高质量自由电子束的合成、控制和表征成为可能。这些探针携带一个倏逝电磁场,该电磁场可以驱动局部激发,并提供关于材料结构及其光学响应的高分辨率信息,目前已达到亚埃和几毫电子伏特的范围。此外,在超快电子显微镜中将自由电子与脉冲光源相结合,增加了亚飞秒范围内的时间分辨率,同时增强了对电子波函数的控制。除了在时间分辨光谱显微镜方面具有卓越能力外,自由电子正在成为量子纳米光子学中的强大工具,在携带和传递量子信息、在样本内部和与样本之间产生纠缠以及揭示纳米级量子现象中以前无法获得的细节方面,其能力与光子相当。本路线图概述了这个快速发展领域的当前状态,突出了关键挑战和机遇,并通过由顶尖专家撰写的一系列专题章节讨论了未来方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b50/12447556/ecd6674ac7af/ph5c00585_0001.jpg

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