Published March 1, 2023 | Version public
Journal Article

How Pendant Groups Dictate Energy and Electron Transfer in Perovskite–Rhodamine Light Harvesting Assemblies

  • 1. ROR icon University of Notre Dame

Abstract

Energy and electron transfer processes allow for efficient manipulation of excited states within light harvesting assemblies for photocatalytic and optoelectronic applications. We have now successfully probed the influence of acceptor pendant group functionalization on the energy and electron transfer between CsPbBr3 perovskite nanocrystals and three rhodamine-based acceptor molecules. The three acceptors─rhodamine B (RhB), rhodamine isothiocyanate (RhB-NCS), and rose Bengal (RoseB)─contain an increasing degree of pendant group functionalization that affects their native excited state properties. When interacting with CsPbBr3 as an energy donor, photoluminescence excitation spectroscopy reveals that singlet energy transfer occurs with all three acceptors. However, the acceptor functionalization directly influences several key parameters that dictate the excited state interactions. For example, RoseB binds to the nanocrystal surface with an apparent association constant (K_(app) = 9.4 × 10⁶ M⁻¹) 200 times greater than RhB (K_(app) = 0.05 × 10⁶ M⁻¹), thus influencing the rate of energy transfer. Femtosecond transient absorption reveals the observed rate constant of singlet energy transfer (k_(EnT)) is an order-of-magnitude greater for RoseB (k_(EnT) = 1 × 10¹¹ s⁻¹) than for RhB and RhB-NCS. In addition to energy transfer, each acceptor had a subpopulation of molecules (∼30%) that underwent electron transfer as a competing pathway. Thus, the structural influence of acceptor moieties must be considered for both excited state energy and electron transfer in nanocrystal-molecular hybrids. The competition between electron and energy transfer further highlights the complexity of excited state interactions in nanocrystal-molecular complexes and the need for careful spectroscopic analysis to elucidate competitive pathways.

Additional Information

© 2023 American Chemical Society. J.T.D. acknowledges support from the Forgash Fellowship for Solar Energy Research and the Center for Environmental Science and Technology (CEST) Predoctoral Fellowship at Notre Dame. J.T.D. and P.V.K. acknowledge support from the Division of Chemical Sciences, Geosciences, and Biosciences, Office of Basic Energy Sciences of the U.S. Department of Energy (award DE-FC02-04ER15533). The authors would like to thank Jishnu Chakkamalayath for his help in obtaining transient absorption data of neat RoseB and for repeating control experiments. The authors also acknowledge the University of Notre Dame Equipment Restoration and Renewal (ERR) program for the purchase of the Spectra Physics laser used for the transient absorption measurements. This is contribution number NDRL no. 5386 from the Notre Dame Radiation Laboratory. The authors declare no competing financial interest.

Additional details

Identifiers

Eprint ID
120287
Resolver ID
CaltechAUTHORS:20230321-822411600.79

Funding

University of Notre Dame
Department of Energy (DOE)
DE-FC02-04ER15533

Dates

Created
2023-05-05
Created from EPrint's datestamp field
Updated
2023-05-05
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