Saraiva Leonardo F, Carneiro Neto Albano N, Bispo-Jr Airton G, Quintano Mateus M, Kraka Elfi, Carlos Luís D, Lima Sergio A M, Pires Ana M, Moura Renaldo T
Department of Chemistry and Biochemistry, School of Science and Technology, São Paulo State University (UNESP), São Paulo, 19060-900, Brazil.
Aveiro Institute of Materials, Physics Department, University of Aveiro, Aveiro, 3810-193, Portugal.
J Chem Theory Comput. 2025 Mar 25;21(6):3066-3076. doi: 10.1021/acs.jctc.4c01461. Epub 2025 Mar 7.
Understanding the dynamics of photophysical processes in Ln complexes remains challenging due to the intricate nature involving the metallic center, where sensitization (antenna effect) plays a pivotal role. Current studies have often overlooked the vibronic coupling within the antenna effect, leading to incomplete insights into excited-state dynamics. To address these shortcomings, we introduce a novel theoretical and computational approach that leverages the impact of the vibrational modes of the S and T states in this effect through the correlation function formalism, offering a comprehensive view of intersystem crossing (ISC). Our approach achieves a desirable alignment between empirical and theoretical rates, outperforming previously employed semiclassical methods. A groundbreaking finding is that vibronic coupling with vibrations in the 700-1600 cm energy range is crucial for higher ISC, and local vibrational mode analysis identified that this process is driven by delocalized vibrations across the molecule. These results shed light on the key molecular fragments responsible for vibronic coupling, opening an avenue for harnessing faster ISC by tailoring the ligand scaffold. Overall, it also demonstrates how ISC dynamics can serve as a bridge between theory and experiment, furnishing detailed mechanistic insights and a roadmap for the development of brighter compounds.
由于涉及金属中心的性质复杂,其中敏化作用(天线效应)起着关键作用,理解镧系元素配合物中的光物理过程动力学仍然具有挑战性。目前的研究常常忽略了天线效应中的振动耦合,导致对激发态动力学的认识不完整。为了解决这些不足,我们引入了一种新颖的理论和计算方法,该方法通过相关函数形式利用S态和T态振动模式在这种效应中的影响,提供了对系间窜越(ISC)的全面看法。我们的方法在经验速率和理论速率之间实现了理想的匹配,优于先前使用的半经典方法。一个开创性的发现是,与700 - 1600 cm能量范围内的振动的振动耦合对于更高的ISC至关重要,局部振动模式分析表明,这个过程是由分子内离域振动驱动的。这些结果揭示了负责振动耦合的关键分子片段,为通过定制配体支架利用更快的ISC开辟了一条途径。总体而言,它还展示了ISC动力学如何作为理论与实验之间的桥梁,提供详细的机理见解以及开发更亮化合物的路线图。