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Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes

[Image: see text] Molecular excitons are useful for applications in light harvesting, organic optoelectronics, and nanoscale computing. Electronic energy transfer (EET) is a process central to the function of devices based on molecular excitons. Achieving EET with a high quantum efficiency is a comm...

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Autores principales: Huff, Jonathan S., Díaz, Sebastián A., Barclay, Matthew S., Chowdhury, Azhad U., Chiriboga, Matthew, Ellis, Gregory A., Mathur, Divita, Patten, Lance K., Roy, Simon K., Sup, Aaron, Biaggne, Austin, Rolczynski, Brian S., Cunningham, Paul D., Li, Lan, Lee, Jeunghoon, Davis, Paul H., Yurke, Bernard, Knowlton, William B., Medintz, Igor L., Turner, Daniel B., Melinger, Joseph S., Pensack, Ryan D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9575151/
https://www.ncbi.nlm.nih.gov/pubmed/36268205
http://dx.doi.org/10.1021/acs.jpcc.2c04336
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author Huff, Jonathan S.
Díaz, Sebastián A.
Barclay, Matthew S.
Chowdhury, Azhad U.
Chiriboga, Matthew
Ellis, Gregory A.
Mathur, Divita
Patten, Lance K.
Roy, Simon K.
Sup, Aaron
Biaggne, Austin
Rolczynski, Brian S.
Cunningham, Paul D.
Li, Lan
Lee, Jeunghoon
Davis, Paul H.
Yurke, Bernard
Knowlton, William B.
Medintz, Igor L.
Turner, Daniel B.
Melinger, Joseph S.
Pensack, Ryan D.
author_facet Huff, Jonathan S.
Díaz, Sebastián A.
Barclay, Matthew S.
Chowdhury, Azhad U.
Chiriboga, Matthew
Ellis, Gregory A.
Mathur, Divita
Patten, Lance K.
Roy, Simon K.
Sup, Aaron
Biaggne, Austin
Rolczynski, Brian S.
Cunningham, Paul D.
Li, Lan
Lee, Jeunghoon
Davis, Paul H.
Yurke, Bernard
Knowlton, William B.
Medintz, Igor L.
Turner, Daniel B.
Melinger, Joseph S.
Pensack, Ryan D.
author_sort Huff, Jonathan S.
collection PubMed
description [Image: see text] Molecular excitons are useful for applications in light harvesting, organic optoelectronics, and nanoscale computing. Electronic energy transfer (EET) is a process central to the function of devices based on molecular excitons. Achieving EET with a high quantum efficiency is a common obstacle to excitonic devices, often owing to the lack of donor and acceptor molecules that exhibit favorable spectral overlap. EET quantum efficiencies may be substantially improved through the use of heteroaggregates—aggregates of chemically distinct dyes—rather than individual dyes as energy relay units. However, controlling the assembly of heteroaggregates remains a significant challenge. Here, we use DNA Holliday junctions to assemble homo- and heterotetramer aggregates of the prototypical cyanine dyes Cy5 and Cy5.5. In addition to permitting control over the number of dyes within an aggregate, DNA-templated assembly confers control over aggregate composition, i.e., the ratio of constituent Cy5 and Cy5.5 dyes. By varying the ratio of Cy5 and Cy5.5, we show that the most intense absorption feature of the resulting tetramer can be shifted in energy over a range of almost 200 meV (1600 cm(–1)). All tetramers pack in the form of H-aggregates and exhibit quenched emission and drastically reduced excited-state lifetimes compared to the monomeric dyes. We apply a purely electronic exciton theory model to describe the observed progression of the absorption spectra. This model agrees with both the measured data and a more sophisticated vibronic model of the absorption and circular dichroism spectra, indicating that Cy5 and Cy5.5 heteroaggregates are largely described by molecular exciton theory. Finally, we extend the purely electronic exciton model to describe an idealized J-aggregate based on Förster resonance energy transfer (FRET) and discuss the potential advantages of such a device over traditional FRET relays.
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spelling pubmed-95751512022-10-18 Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes Huff, Jonathan S. Díaz, Sebastián A. Barclay, Matthew S. Chowdhury, Azhad U. Chiriboga, Matthew Ellis, Gregory A. Mathur, Divita Patten, Lance K. Roy, Simon K. Sup, Aaron Biaggne, Austin Rolczynski, Brian S. Cunningham, Paul D. Li, Lan Lee, Jeunghoon Davis, Paul H. Yurke, Bernard Knowlton, William B. Medintz, Igor L. Turner, Daniel B. Melinger, Joseph S. Pensack, Ryan D. J Phys Chem C Nanomater Interfaces [Image: see text] Molecular excitons are useful for applications in light harvesting, organic optoelectronics, and nanoscale computing. Electronic energy transfer (EET) is a process central to the function of devices based on molecular excitons. Achieving EET with a high quantum efficiency is a common obstacle to excitonic devices, often owing to the lack of donor and acceptor molecules that exhibit favorable spectral overlap. EET quantum efficiencies may be substantially improved through the use of heteroaggregates—aggregates of chemically distinct dyes—rather than individual dyes as energy relay units. However, controlling the assembly of heteroaggregates remains a significant challenge. Here, we use DNA Holliday junctions to assemble homo- and heterotetramer aggregates of the prototypical cyanine dyes Cy5 and Cy5.5. In addition to permitting control over the number of dyes within an aggregate, DNA-templated assembly confers control over aggregate composition, i.e., the ratio of constituent Cy5 and Cy5.5 dyes. By varying the ratio of Cy5 and Cy5.5, we show that the most intense absorption feature of the resulting tetramer can be shifted in energy over a range of almost 200 meV (1600 cm(–1)). All tetramers pack in the form of H-aggregates and exhibit quenched emission and drastically reduced excited-state lifetimes compared to the monomeric dyes. We apply a purely electronic exciton theory model to describe the observed progression of the absorption spectra. This model agrees with both the measured data and a more sophisticated vibronic model of the absorption and circular dichroism spectra, indicating that Cy5 and Cy5.5 heteroaggregates are largely described by molecular exciton theory. Finally, we extend the purely electronic exciton model to describe an idealized J-aggregate based on Förster resonance energy transfer (FRET) and discuss the potential advantages of such a device over traditional FRET relays. American Chemical Society 2022-09-28 2022-10-13 /pmc/articles/PMC9575151/ /pubmed/36268205 http://dx.doi.org/10.1021/acs.jpcc.2c04336 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Huff, Jonathan S.
Díaz, Sebastián A.
Barclay, Matthew S.
Chowdhury, Azhad U.
Chiriboga, Matthew
Ellis, Gregory A.
Mathur, Divita
Patten, Lance K.
Roy, Simon K.
Sup, Aaron
Biaggne, Austin
Rolczynski, Brian S.
Cunningham, Paul D.
Li, Lan
Lee, Jeunghoon
Davis, Paul H.
Yurke, Bernard
Knowlton, William B.
Medintz, Igor L.
Turner, Daniel B.
Melinger, Joseph S.
Pensack, Ryan D.
Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title_full Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title_fullStr Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title_full_unstemmed Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title_short Tunable Electronic Structure via DNA-Templated Heteroaggregates of Two Distinct Cyanine Dyes
title_sort tunable electronic structure via dna-templated heteroaggregates of two distinct cyanine dyes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9575151/
https://www.ncbi.nlm.nih.gov/pubmed/36268205
http://dx.doi.org/10.1021/acs.jpcc.2c04336
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