Weiss Rachel, VanOrman Zachary A, Sullivan Colette M, Nienhaus Lea
Department of Chemistry and Biochemistry, Florida State University, Tallahassee, Florida 32306, United States.
ACS Mater Au. 2022 Aug 7;2(6):641-654. doi: 10.1021/acsmaterialsau.2c00047. eCollection 2022 Nov 9.
The process of photon upconversion promises importance for many optoelectronic applications, as it can result in higher efficiencies and more effective photon management. Upconversion via triplet-triplet annihilation (TTA) occurs at low incident powers and at high efficiencies, requirements for integration into existing optoelectronic devices. Semiconductor nanocrystals are a diverse class of triplet sensitizers with advantages over traditional molecular sensitizers such as energetic tunability and minimal energy loss during the triplet sensitization process. In this Perspective, we review current progress in semiconductor nanocrystal triplet sensitization, specifically focusing on the nanocrystal, the ligand shell which surrounds the nanocrystal, and progress in solid-state sensitization. Finally, we discuss potential areas of improvement which could result in more efficient upconversion systems sensitized by semiconductor nanocrystals. Specifically, we focus on the development of solid-state TTA upconversion systems, elucidation of the energy transfer mechanisms from nanocrystal to transmitter ligand which underpin the upconversion process and propose novel configurations of nanocrystal-sensitized systems.
光子上转换过程对许多光电子应用具有重要意义,因为它可以提高效率并实现更有效的光子管理。通过三重态-三重态湮灭(TTA)实现的上转换在低入射功率下高效发生,这是集成到现有光电器件中的要求。半导体纳米晶体是一类多样的三重态敏化剂,与传统分子敏化剂相比具有优势,例如能量可调谐性以及在三重态敏化过程中能量损失最小。在这篇综述中,我们回顾了半导体纳米晶体三重态敏化的当前进展,特别关注纳米晶体、围绕纳米晶体的配体壳层以及固态敏化的进展。最后,我们讨论了可能带来更高效的由半导体纳米晶体敏化的上转换系统的潜在改进领域。具体而言,我们专注于固态TTA上转换系统的开发、阐明支撑上转换过程的从纳米晶体到传输配体的能量转移机制,并提出纳米晶体敏化系统的新型配置。