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利用极紫外波段的共振四波混频光谱探测电子与空穴的共定位。

Probing electron and hole colocalization by resonant four-wave mixing spectroscopy in the extreme ultraviolet.

作者信息

Rottke Horst, Engel Robin Y, Schick Daniel, Schunck Jan O, Miedema Piter S, Borchert Martin C, Kuhlmann Marion, Ekanayake Nagitha, Dziarzhytski Siarhei, Brenner Günter, Eichmann Ulrich, von Korff Schmising Clemens, Beye Martin, Eisebitt Stefan

机构信息

Max-Born-Institut für Nichtlineare Optik und Kurzzeitspektroskopie, Max-Born-Straße 2A, 12489 Berlin, Germany.

Deutsches Elektronen-Synchrotron DESY, Notkestr. 85, 22607 Hamburg, Germany.

出版信息

Sci Adv. 2022 May 20;8(20):eabn5127. doi: 10.1126/sciadv.abn5127.

Abstract

Extending nonlinear spectroscopic techniques into the x-ray domain promises unique insight into photoexcited charge dynamics, which are of fundamental and applied interest. We report on the observation of a third-order nonlinear process in lithium fluoride (LiF) at a free-electron laser. Exploring the yield of four-wave mixing (FWM) in resonance with transitions to strongly localized core exciton states versus delocalized Bloch states, we find resonant FWM to be a sensitive probe for the degree of charge localization: Substantial sum- and difference-frequency generation is observed exclusively when in a one- or three-photon resonance with a LiF core exciton, with a dipole forbidden transition affecting details of the nonlinear response. Our reflective geometry-based approach to detect FWM signals enables the study of a wide variety of condensed matter sample systems, provides atomic selectivity via resonant transitions, and can be easily scaled to shorter wavelengths at free-electron x-ray lasers.

摘要

将非线性光谱技术扩展到X射线领域有望为光激发电荷动力学带来独特的见解,这在基础研究和应用研究方面都具有重要意义。我们报告了在自由电子激光下对氟化锂(LiF)中三阶非线性过程的观测。通过探索与强局域化核心激子态跃迁到离域布洛赫态共振的四波混频(FWM)产率,我们发现共振FWM是电荷局域化程度的灵敏探针:仅当与LiF核心激子处于单光子或三光子共振时,才会观察到大量的和频与差频产生,其中一个偶极禁戒跃迁会影响非线性响应的细节。我们基于反射几何结构来检测FWM信号的方法,能够研究各种凝聚态物质样本系统,通过共振跃迁提供原子选择性,并且可以轻松扩展到自由电子X射线激光的更短波长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c500/9122317/f02673d90993/sciadv.abn5127-f1.jpg

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