Bange Jan Philipp, Schmitt David, Bennecke Wiebke, Meneghini Giuseppe, AlMutairi AbdulAziz, Watanabe Kenji, Taniguchi Takashi, Steil Daniel, Steil Sabine, Weitz R Thomas, Jansen G S Matthijs, Hofmann Stephan, Brem Samuel, Malic Ermin, Reutzel Marcel, Mathias Stefan
I. Physikalisches Institut, Georg-August-Universität Göttingen, Friedrich-Hund-Platz 1, 37077 Göttingen, Germany.
Fachbereich Physik, Philipps-Universität Marburg, 35032 Marburg, Germany.
Sci Adv. 2024 Feb 9;10(6):eadi1323. doi: 10.1126/sciadv.adi1323. Epub 2024 Feb 7.
In two-dimensional semiconductors, cooperative and correlated interactions determine the material's excitonic properties and can even lead to the creation of correlated states of matter. Here, we study the fundamental two-particle correlated exciton state formed by the Coulomb interaction between single-particle holes and electrons. We find that the ultrafast transfer of an exciton's hole across a type II band-aligned semiconductor heterostructure leads to an unexpected sub-200-femtosecond upshift of the single-particle energy of the electron being photoemitted from the two-particle exciton state. While energy relaxation usually leads to an energetic downshift of the spectroscopic signature, we show that this upshift is a clear fingerprint of the correlated interaction of the electron and hole parts of the exciton. In this way, time-resolved photoelectron spectroscopy is straightforwardly established as a powerful method to access electron-hole correlations and cooperative behavior in quantum materials. Our work highlights this capability and motivates the future study of optically inaccessible correlated excitonic and electronic states of matter.
在二维半导体中,协同和关联相互作用决定了材料的激子特性,甚至能导致物质关联态的产生。在此,我们研究由单粒子空穴与电子之间的库仑相互作用形成的基本双粒子关联激子态。我们发现,激子的空穴在II型能带对齐的半导体异质结构中实现超快转移,会导致从双粒子激子态光发射出的电子的单粒子能量出现意想不到的低于200飞秒的上移。虽然能量弛豫通常会导致光谱特征的能量下移,但我们表明这种上移是激子中电子和空穴部分关联相互作用的明确标志。通过这种方式,时间分辨光电子能谱被直接确立为一种研究量子材料中电子 - 空穴关联及协同行为的有力方法。我们的工作突出了这一能力,并推动了对光学上难以探测的关联激子态和物质电子态的未来研究。