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Massachusetts Institute of Technology

Theoretical Design of Molecular Nanostructures for Exciton Control

Abstract

dc:description.abstract

Organic semiconductors comprised of strongly-coupled chromophores harness control of delocalized excitations, or excitons, via programmed molecular structures. The dynamics of these excitons enable energy and information transfer within molecular networks, positioning chromophore assemblies as ideal candidates for a number of technologies such as solar energy conversion, nanoelectronics, and quantum computing. Despite significant advancements, there exists no universal model that can explain the dependence of exciton photophysics on molecular morphology. This thesis employs mathematical and atomistic models to contribute key physical insights into the interdependencies between chromophore spatial organization and exciton dynamics, shaped by inter-chromophore couplings and interactions with the thermal bath. In the first part, a Frenkel Exciton-based model is introduced as a strategy for studying exciton evolution between precisely arranged chromophores. In Chapter 2, I develop a novel approach to map unitary quantum computing operations to Hamiltonians describing excitonic circuits in the presence of a model bath. Then, Chapter 3 scales this framework to complex quantum algorithms represented by explicit molecular systems. Finally, Chapter 4 presents an innovative molecular approach for directing exciton flow via geometrical phase in tightly-bound chromophore arrays. The second part delves into the intricacies of exciton interaction in densely packed molecular systems arranged within DNA scaffolds. Chapter 5 combines molecular dynamics and quantum mechanical calculations, further validated by experimental results, to study the interplay between long-range electrostatic and short-range charge transfer interactions. Chapter 6 then correlates this interplay with geometrical configurations derived from the DNA scaffolding. This thesis culminates in Chapter 7, which introduces a computational pipeline designed to leverage the precise control over excitons afforded by macromolecular frameworks, paving the way for custom-tailored DNA-based excitonic circuits.

Degree

thesis:*
Name thesis:degree_name
Doctoral
Department dc:contributor.department
Massachusetts Institute of Technology. Department of Chemistry
Grantor dc:publisher
Massachusetts Institute of Technology
Year dc:date.issued
2024

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Castellanos, Maria A.
Advisor dc:contributor.advisor
  • Willard, Adam P.

Rights

dc:rights
Statement dc:rights
  • Attribution-ShareAlike 4.0 International (CC BY-SA 4.0)
  • Copyright retained by author(s)

Identifiers

dc:identifier.*
Handle dc:identifier.uri
https://hdl.handle.net/1721.1/157831
OAI identifier oai:identifier
oai:dspace.mit.edu:1721.1/157831

Chain of custody

source
Harvested from
MIT
Base URL
dspace.mit.edu/oai/request
Last updated
2026-07-22
Source record
OAI-PMH GetRecord
related terms
citation

Castellanos, Maria A.. Theoretical Design of Molecular Nanostructures for Exciton Control. Massachusetts Institute of Technology, 2024. https://hdl.handle.net/1721.1/157831