Measurement and control of exciton spin in organic light emitting devices
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2007. === Includes bibliographical references (p. 199-215). === Organic semiconductors are a promising new material set for electronic and optoelectronic devices. Their properties can be pre...
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ndltd-MIT-oai-dspace.mit.edu-1721.1-422452019-05-02T15:48:16Z Measurement and control of exciton spin in organic light emitting devices Segal, Michael, Ph. D. Massachusetts Institute of Technology Marc A. Baldo. Massachusetts Institute of Technology. Dept. of Electrical Engineering and Computer Science. Massachusetts Institute of Technology. Dept. of Electrical Engineering and Computer Science. Electrical Engineering and Computer Science. Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2007. Includes bibliographical references (p. 199-215). Organic semiconductors are a promising new material set for electronic and optoelectronic devices. Their properties can be precisely controlled through chemistry, and they are well-suited for large-area, flexible, and low-cost devices. Optical emission and absorption in these materials is mediated by strongly-bound electron-hole pairs called "excitons". While the function of many organic electronic devices depends on excitons, exciton formation is incompletely understood. This thesis presents a general rate model for exciton formation, and studies formation through three different experimental approaches, in the context of the rate model. First, a novel method for measuring exciton spin statistics is described and implemented. This method avoids several drawbacks common to existing methods, and shows completely randomized exciton spin statistics in two archetypal organic semiconductors: one that is a small molecule, and another that is a polymer. Second, optically-detected magnetic resonance effects in organic semiconductors are shown to be unrelated to exciton formation processes, contrary to the current understanding. A quenching-based model is developed and shown to completely describe the data. Both of these experimental results suggest an absence of spin mixing of exciton precursor states. In the third section of this thesis, this lack of mixing is confirmed both experimentally and through calculation. It is then "turned on" through the introduction of spin-orbit coupling. An approximately three-fold increase in the fluorescent efficiency of an organic light emitting device results. by Michael Segal. Ph.D. 2008-09-03T15:03:47Z 2008-09-03T15:03:47Z 2007 2007 Thesis http://hdl.handle.net/1721.1/42245 231630664 eng M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582 215 p. application/pdf Massachusetts Institute of Technology |
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Electrical Engineering and Computer Science. |
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Electrical Engineering and Computer Science. Segal, Michael, Ph. D. Massachusetts Institute of Technology Measurement and control of exciton spin in organic light emitting devices |
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Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2007. === Includes bibliographical references (p. 199-215). === Organic semiconductors are a promising new material set for electronic and optoelectronic devices. Their properties can be precisely controlled through chemistry, and they are well-suited for large-area, flexible, and low-cost devices. Optical emission and absorption in these materials is mediated by strongly-bound electron-hole pairs called "excitons". While the function of many organic electronic devices depends on excitons, exciton formation is incompletely understood. This thesis presents a general rate model for exciton formation, and studies formation through three different experimental approaches, in the context of the rate model. First, a novel method for measuring exciton spin statistics is described and implemented. This method avoids several drawbacks common to existing methods, and shows completely randomized exciton spin statistics in two archetypal organic semiconductors: one that is a small molecule, and another that is a polymer. Second, optically-detected magnetic resonance effects in organic semiconductors are shown to be unrelated to exciton formation processes, contrary to the current understanding. A quenching-based model is developed and shown to completely describe the data. Both of these experimental results suggest an absence of spin mixing of exciton precursor states. In the third section of this thesis, this lack of mixing is confirmed both experimentally and through calculation. It is then "turned on" through the introduction of spin-orbit coupling. An approximately three-fold increase in the fluorescent efficiency of an organic light emitting device results. === by Michael Segal. === Ph.D. |
author2 |
Marc A. Baldo. |
author_facet |
Marc A. Baldo. Segal, Michael, Ph. D. Massachusetts Institute of Technology |
author |
Segal, Michael, Ph. D. Massachusetts Institute of Technology |
author_sort |
Segal, Michael, Ph. D. Massachusetts Institute of Technology |
title |
Measurement and control of exciton spin in organic light emitting devices |
title_short |
Measurement and control of exciton spin in organic light emitting devices |
title_full |
Measurement and control of exciton spin in organic light emitting devices |
title_fullStr |
Measurement and control of exciton spin in organic light emitting devices |
title_full_unstemmed |
Measurement and control of exciton spin in organic light emitting devices |
title_sort |
measurement and control of exciton spin in organic light emitting devices |
publisher |
Massachusetts Institute of Technology |
publishDate |
2008 |
url |
http://hdl.handle.net/1721.1/42245 |
work_keys_str_mv |
AT segalmichaelphdmassachusettsinstituteoftechnology measurementandcontrolofexcitonspininorganiclightemittingdevices |
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1719028366500167680 |