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使用源项法对极化子发射进行定量建模。

Quantitative Modeling of Polaritonic Emission Using the Source Term Method.

作者信息

Bhuyan Rahul, Lednev Maksim, Schäfer Clara, Feist Johannes, Börjesson Karl

机构信息

Department of Chemistry and Molecular Biology, University of Gothenburg, Gothenburg 41390, Sweden.

Departamento de Física Teórica de la Materia Condensada and Condensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, Madrid 28049, Spain.

出版信息

J Phys Chem Lett. 2025 Jun 26;16(25):6435-6441. doi: 10.1021/acs.jpclett.5c01213. Epub 2025 Jun 17.

Abstract

Strong exciton-photon coupling leads to the formation of hybrid states, polaritons, with properties different from those of their constituents, making it a valuable tool for modifying the physical and chemical properties of organic and inorganic materials. Despite its potential, the field lacks a fundamental understanding of the photophysics involved and the ability to model experimental data effectively. In this study, we quantitatively simulate polaritonic emission using the source term method. This model assumes that each molecular dipole in the exciton reservoir emits as it would in free space, into the optical environment formed by the polaritons. To benchmark theory with experiments, a BODIPY derivative containing a suitable amount of steric bulk was synthesized. Neat films of this molecule exhibited close to unperturbed absorption and emission envelopes compared to dilute solution. When placed in an optical cavity, the ultrastrong coupling regime was reached, and a collapse of the polaritonic line width was observed. Such a collapse is an indication of an ideal polariton, and it allowed for the emission in the transverse electric and magnetic polarizations to be spectrally resolved and thus successfully compared to the simulated emission. This work hence describes an effective model that fits experimental data, which is crucial for advancing the field and for optimizing applications.

摘要

强激子 - 光子耦合导致形成具有与其组成部分不同性质的混合态——极化激元,这使其成为改变有机和无机材料物理及化学性质的宝贵工具。尽管有其潜力,但该领域缺乏对所涉及的光物理的基本理解以及有效模拟实验数据的能力。在本研究中,我们使用源项方法对极化激元发射进行定量模拟。该模型假设激子库中的每个分子偶极子在自由空间中那样发射,进入由极化激元形成的光学环境。为了用实验对理论进行基准测试,合成了一种含有适量空间位阻的BODIPY衍生物。与稀溶液相比,该分子的纯膜表现出接近未受干扰的吸收和发射包络。当置于光学腔中时,达到了超强耦合状态,并观察到极化激元线宽的坍缩。这种坍缩是理想极化激元的一个标志,它使得横向电偏振和磁偏振的发射在光谱上得以分辨,从而能够成功地与模拟发射进行比较。因此,这项工作描述了一个能拟合实验数据的有效模型,这对于推动该领域发展和优化应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f676/12207670/e349a036b30a/jz5c01213_0001.jpg

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