Ultrafast Electron Transfer Across a Nanocapsular Wall: Coumarins as Donors Viologen as Acceptor and Octa Acid Capsule as the Mediator
Document Type
Article
Publication Date
1-11-2018
Department
Physical & Earth Sciences
Abstract
Results of our study on ultrafast electron transfer (eT) dynamics from coumarins (coumarin-1, coumarin-480, and coumarin-153) incarcerated within octa acid (OA) capsules as electron donors to methyl viologen dissolved in water as acceptor are presented. Upon photoexcitation, coumarin inside the OA capsule transfers an electron to the acceptor electrostatically attached to the capsule leading to a long-lived radical-ion pair separated by the OA capsular wall. This charge-separated state returns to the neutral ground state via back electron transfer on the nanosecond time scale. This system allows for ultrafast electron transfer processes through a molecular wall from the apolar capsular interior to the highly polar (aqueous) environment on the femtosecond time scale. Employing femtosecond transient absorption spectroscopy, distinct rates of both forward (1-25 ps) and backward eT (700-1200 ps) processes were measured. Further understanding of the energetics is provided using Rehm-Weller analysis for the investigated photoinduced eT reactions. The results provide the rates of the eT across a molecular wall, akin to an isotropic solution, depending on the standard free energy of the reaction. The insights from this work could be utilized in the future design of efficient electron transfer processes across interfaces separating apolar and polar environments."
DOI
10.1021/acs.jpcb.7b11306
First Page
328
Last Page
337
Volume
122
Issue
1
Publication Title
Journal of Physical Chemistry B
ISSN
1520-6106
Recommended Citation
Chuang, Chi Hung; Porel, Mintu; Choudhury, Rajib; Burda, Clemens; and Ramamurthy, V., "Ultrafast Electron Transfer Across a Nanocapsular Wall: Coumarins as Donors Viologen as Acceptor and Octa Acid Capsule as the Mediator" (2018). Faculty Publications - Physical & Earth Sciences. 1.
https://orc.library.atu.edu/faculty_pub_phys/1