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利用单光子雪崩二极管相机进行时空激子追踪

Spatiotemporal Exciton Tracking with a SPAD Camera.

作者信息

Dall'Aglio Diana, Brinatti Vazquez Guillermo D, Bolzonello Luca, Cusini Iris, Camphausen Robin, van Hulst Niek F

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 Avancats, Barcelona 08010, Spain.

出版信息

ACS Photonics. 2025 Feb 17;12(3):1291-1299. doi: 10.1021/acsphotonics.4c02359. eCollection 2025 Mar 19.

Abstract

Spatiotemporal microscopy plays an important role in the quest for highly efficient light harvesting materials as it allows direct tracking of the nanoscale transport of excitons, the carriers of the photon energy. Unfortunately, achieving high resolution in both space and time often requires scanning beam spots or delay lines, limiting these techniques to specialized research groups. To overcome this problem, we introduce a novel implementation of photoluminescence-detected exciton tracking using a camera composed of an array of single-photon avalanche diodes (SPADs), gated with ∼150 ps temporal accuracy. The use of such a SPAD camera drastically simplifies the experiment, is free of moving parts, and provides at least 1 order of magnitude increase in photon collection efficiency due to the parallel multipixel acquisition. Moreover, the camera allows one to implement different super-resolution excitation strategies. Here we show both point and structured excitation in the same device by simply changing the optical element. The structured illumination allows direct retrieval of the diffusion from a single time-resolved imaging without fitting, even at fluences far below exciton-exciton annihilation conditions. We tested the SPAD camera effectiveness by studying the exciton diffusion properties of the organic photovoltaic material PM6, where we measured an exciton diffusion length of 45 nm. Certainly our new implementation, boosted by rapid advances in SPAD technology, will extend the range of both users and applications of spatiotemporal microscopy.

摘要

时空显微镜在寻找高效光捕获材料方面发挥着重要作用,因为它可以直接跟踪激子(光子能量的载体)的纳米级传输。不幸的是,要在空间和时间上都实现高分辨率,通常需要扫描光束光斑或延迟线,这使得这些技术仅限于专业研究团队。为了克服这个问题,我们引入了一种新颖的光致发光检测激子跟踪方法,使用由单光子雪崩二极管(SPAD)阵列组成的相机,其门控时间精度约为150皮秒。使用这种SPAD相机极大地简化了实验,无需移动部件,并且由于并行多像素采集,光子收集效率至少提高了1个数量级。此外,该相机允许实现不同的超分辨率激发策略。在这里,我们通过简单地更换光学元件,在同一设备中展示了点激发和结构化激发。结构化照明允许直接从单次时间分辨成像中检索扩散情况,无需拟合,即使在远低于激子-激子湮灭条件的光通量下也是如此。我们通过研究有机光伏材料PM6的激子扩散特性来测试SPAD相机的有效性,在该研究中我们测量到激子扩散长度为45纳米。当然,在SPAD技术快速发展的推动下,我们的新方法将扩大时空显微镜的用户范围和应用范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4350/11926952/102ff8e22662/ph4c02359_0001.jpg

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