Laboratoire PEIRENE, Université de Limoges, 123 Avenue Albert Thomas, 87060 Limoges, France.
Advanced Materials Engineering and Modelling Group, Faculty of Chemistry, Wrocław University of Science and Technology, Wybrzeże Wyspianskiego 27, 50-370 Wrocław, Poland.
Molecules. 2021 Oct 19;26(20):6323. doi: 10.3390/molecules26206323.
The use of two-photon absorption (TPA) for such applications as microscopy, imaging, and photodynamic therapy (PDT) offers several advantages over the usual one-photon excitation. This creates a need for photosensitizers that exhibit both strong two-photon absorption and the highly efficient generation of reactive oxygen species (ROS), as well as, ideally, bright luminescence. This review focuses on different strategies utilized to improve the TPA properties of various multi-photon absorbing species that have the required photophysical properties. Along with well-known families of photosensitizers, including porphyrins, we also describe other promising organic and organometallic structures and more complex systems involving organic and inorganic nanoparticles. We concentrate on the published studies that provide two-photon absorption cross-section values and the singlet oxygen (or other ROS) and luminescence quantum yields, which are crucial for potential use within PDT and diagnostics. We hope that this review will aid in the design and modification of novel TPA photosensitizers, which can help in exploiting the features of nonlinear absorption processes.
双光子吸收(TPA)在显微镜、成像和光动力疗法(PDT)等应用中的使用相对于通常的单光子激发具有几个优势。这就需要具有强双光子吸收和高效产生活性氧(ROS)的光敏剂,以及理想情况下的明亮发光。本综述重点介绍了用于改善具有所需光物理性质的各种多光子吸收物质的 TPA 特性的不同策略。除了包括卟啉在内的众所周知的光敏剂家族外,我们还描述了其他有前途的有机和有机金属结构以及涉及有机和无机纳米粒子的更复杂系统。我们专注于提供双光子吸收截面值以及单线态氧(或其他 ROS)和发光量子产率的已发表研究,这对于 PDT 和诊断中的潜在用途至关重要。我们希望本综述将有助于设计和修饰新型 TPA 光敏剂,这有助于利用非线性吸收过程的特性。