Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits

Molecular magnetism is a fascinating field critical to the development and understanding of new technologies such as molecular quantum bits and quantum memories. Implementing these materials is fundamentally limited by the rapid decay of populations of electronic spins back to magnetic equilibrium....

Full description

Bibliographic Details
Main Author: Amdur, M. Jeremy
Other Authors: Freedman, Danna
Format: Thesis
Published: Massachusetts Institute of Technology 2023
Online Access:https://hdl.handle.net/1721.1/150427
_version_ 1826208069280858112
author Amdur, M. Jeremy
author2 Freedman, Danna
author_facet Freedman, Danna
Amdur, M. Jeremy
author_sort Amdur, M. Jeremy
collection MIT
description Molecular magnetism is a fascinating field critical to the development and understanding of new technologies such as molecular quantum bits and quantum memories. Implementing these materials is fundamentally limited by the rapid decay of populations of electronic spins back to magnetic equilibrium. Because of the small energy scale of paramagnetic interactions, the time a non-equilibrium state can be maintained is governed by the interaction of the electronic spin with the low energy phonon bath of its matrix. Therefore, controlling the strength of this interaction is critical for a new quantum technology. In the weak spin-phonon coupling regime, we can design technology where quantum states can be maintained, even at high temperatures. In the strong spinphonon coupling limit, we can design systems where the properties of the magnet are controlled externally by manipulation of the matrix. There is a large gulf between these lofty goals and our current technological capabilities. Bridging the gap requires a deep understanding of magnetostructural correlations and the impact tuning molecular handles has on the strength of the spin-phonon interaction. This thesis adds new key insights into the nature of the spin-phonon interaction and highlights how it can be controlled along three unique axes. Chapter 1 introduces the field of quantum information science, and the unique and powerful potential transition metal molecular electronic spins have to the field. Chapter 2 highlights the manipulation of local molecular vibrations to minimize the spin-phonon interaction and maximize quantum coherence at higher temperatures. We use these results to establish design principles for creating new high temperature quantum materials. Chapter 3 discusses progress on direct phonon engineering of electron spin systems. We design frameworks of interacting molecular qubits with specific spin topologies to create bulk entangled systems with a desired phonon structure.
first_indexed 2024-09-23T13:59:59Z
format Thesis
id mit-1721.1/150427
institution Massachusetts Institute of Technology
last_indexed 2024-09-23T13:59:59Z
publishDate 2023
publisher Massachusetts Institute of Technology
record_format dspace
spelling mit-1721.1/1504272023-04-07T03:21:31Z Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits Amdur, M. Jeremy Freedman, Danna Massachusetts Institute of Technology. Department of Chemistry Molecular magnetism is a fascinating field critical to the development and understanding of new technologies such as molecular quantum bits and quantum memories. Implementing these materials is fundamentally limited by the rapid decay of populations of electronic spins back to magnetic equilibrium. Because of the small energy scale of paramagnetic interactions, the time a non-equilibrium state can be maintained is governed by the interaction of the electronic spin with the low energy phonon bath of its matrix. Therefore, controlling the strength of this interaction is critical for a new quantum technology. In the weak spin-phonon coupling regime, we can design technology where quantum states can be maintained, even at high temperatures. In the strong spinphonon coupling limit, we can design systems where the properties of the magnet are controlled externally by manipulation of the matrix. There is a large gulf between these lofty goals and our current technological capabilities. Bridging the gap requires a deep understanding of magnetostructural correlations and the impact tuning molecular handles has on the strength of the spin-phonon interaction. This thesis adds new key insights into the nature of the spin-phonon interaction and highlights how it can be controlled along three unique axes. Chapter 1 introduces the field of quantum information science, and the unique and powerful potential transition metal molecular electronic spins have to the field. Chapter 2 highlights the manipulation of local molecular vibrations to minimize the spin-phonon interaction and maximize quantum coherence at higher temperatures. We use these results to establish design principles for creating new high temperature quantum materials. Chapter 3 discusses progress on direct phonon engineering of electron spin systems. We design frameworks of interacting molecular qubits with specific spin topologies to create bulk entangled systems with a desired phonon structure. Ph.D. 2023-04-06T14:31:48Z 2023-04-06T14:31:48Z 2022-09 2022-10-25T17:27:28.754Z Thesis https://hdl.handle.net/1721.1/150427 In Copyright - Educational Use Permitted Copyright MIT http://rightsstatements.org/page/InC-EDU/1.0/ application/pdf application/pdf Massachusetts Institute of Technology
spellingShingle Amdur, M. Jeremy
Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title_full Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title_fullStr Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title_full_unstemmed Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title_short Chemical Control of the Spin-Phonon Interaction to Develop a New Generation of Molecular Quantum Bits
title_sort chemical control of the spin phonon interaction to develop a new generation of molecular quantum bits
url https://hdl.handle.net/1721.1/150427
work_keys_str_mv AT amdurmjeremy chemicalcontrolofthespinphononinteractiontodevelopanewgenerationofmolecularquantumbits