Aggregation of Charge Acceptors on Nanocrystal Surfaces Alters Rates of Photoinduced Electron Transfer

化学 纳米晶 接受者 电子转移 离域电子 光诱导电子转移 化学物理 硫化铅 配体(生物化学) 电子受体 纳米技术 光化学 量子点 有机化学 物理 受体 材料科学 生物化学 凝聚态物理
作者
Danielle Cadena,Jakub K. Sowa,Daniel E. Cotton,Christopher D. Wight,Cole L Hoffman,Holden R. Wagner,Jessica T. Boette,Emily K Raulerson,Brent L. Iverson,Peter J. Rossky,Sean T. Roberts
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:144 (49): 22676-22688 被引量:5
标识
DOI:10.1021/jacs.2c09758
摘要

Semiconductor nanocrystals (NCs) interfaced with molecular ligands that function as charge and energy acceptors are an emerging platform for the design of light-harvesting, photon-upconverting, and photocatalytic materials. However, NC systems explored for these applications often feature high concentrations of bound acceptor ligands, which can lead to ligand–ligand interactions that may alter each system’s ability to undergo charge and energy transfer. Here, we demonstrate that aggregation of acceptor ligands impacts the rate of photoinduced NC-to-ligand charge transfer between lead(II) sulfide (PbS) NCs and perylenediimide (PDI) electron acceptors. As the concentration of PDI acceptors is increased, we find the average electron transfer rate from PbS to PDI ligands decreases by nearly an order of magnitude. The electron transfer rate slowdown with increasing PDI concentration correlates strongly with the appearance of PDI aggregates in steady-state absorption spectra. Electronic structure calculations and molecular dynamics (MD) simulations suggest PDI aggregation slows the rate of electron transfer by reducing orbital overlap between PbS charge donors and PDI charge acceptors. While we find aggregation slows electron transfer in this system, the computational models we employ predict ligand aggregation could also be used to speed electron transfer by producing delocalized states that exhibit improved NC-molecule electronic coupling and energy alignment with NC conduction band states. Our results demonstrate that ligand aggregation can alter rates of photoinduced electron transfer between NCs and organic acceptor ligands and should be considered when designing hybrid NC:molecule systems for charge separation.
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