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Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
Design Principles for Next Generation of Small Organic Molecules for Photodynamics Therapy Revealed by Nonadiabatic
Vinícius N da Rocha1, Davide Avagliano2, Paulo C Piquini1
1Department of Physics, Federal University of Santa Maria, Santa Maria, RS, Brazil.
Abstract:
Nitrobenzochalcogenadiazole derivatives are emerging candidates for photodynamic therapy (PDT), yet the precise mechanisms governing their excited-state deactivation and triplet generation remain to be fully elucidated. This study employs nonadiabatic dynamics simulations, using the trajectory surface hopping method within a linear vibronic coupling (LVC) framework, to unravel the intersystem crossing (ISC) pathways in these systems. We systematically investigate two design factors: the heavy-atom effect (substituting S with Se and Te) and the influence of "push-pull" electronic architectures (donor-acceptor vs. donor-donor/acceptor-acceptor). Our results demonstrate that replacing sulfur with selenium and tellurium monotonically accelerates ISC, reducing excited-state lifetimes from 6.1 ps to sub-picosecond timescales ( 0.9 ps) via a dominant relaxation channel driven by enhanced spin-orbit coupling. Furthermore, we reveal that structural modifications that disrupt this push-pull nature (D-D or A-A) result in kinetic bottlenecks, trapping the population in the singlet manifold. These dynamical insights establish clear structure-property relationships, guiding the rational design of photosensitizers with optimized triplet quantum yields.
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