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Nikiforov D, Ehrenfreund E. Magnetic Field Effects of Charge Transfer Excitons in Organic Semiconductor Devices. Isr J Chem 2021. [DOI: 10.1002/ijch.202100091] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/06/2023]
Affiliation(s)
- Daniel Nikiforov
- Physics Department and Solid State Institute Technion-Israel Institute of Technology Haifa 3200003 Israel
| | - Eitan Ehrenfreund
- Physics Department and Solid State Institute Technion-Israel Institute of Technology Haifa 3200003 Israel
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2
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Abstract
At low temperatures and high magnetic fields, electron and hole spins in an organic light-emitting diode become polarized so that recombination preferentially forms molecular triplet excited-state species. For low device currents, magnetoelectroluminescence perfectly follows Boltzmann activation, implying a virtually complete polarization outcome. As the current increases, the magnetoelectroluminescence effect is reduced because spin polarization is suppressed by the reduction in carrier residence time within the device. Under these conditions, an additional field-dependent process affecting the spin-dependent recombination emerges, possibly related to the build-up of triplet excitons and their interaction with free charge carriers. Suppression of the EL alone does not prove electronic spin polarization. We therefore probe changes in the spin statistics of recombination directly in a dual singlet-triplet emitting material, which shows a concomitant rise in phosphorescence intensity as fluorescence is suppressed. Finite spin-orbit coupling in these materials gives rise to a microscopic distribution in effective g-factors of electrons and holes, Δg, i.e., a distribution in Larmor frequencies. This Δg effect in the pair, which mixes singlet and triplet, further suppresses singlet-exciton formation at high fields in addition to thermal spin polarization of the individual carriers. Though literature reports magnetoelectroluminescence (MEL) affects in organic light‐emitting diodes (OLEDs), probing the organic layer’s effective spin polarization remains a challenge. Here, the authors utilize dual singlet‐triplet emitting OLEDs to reveal the spin polarization in the materials.
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3
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Jamali S, Mkhitaryan VV, Malissa H, Nahlawi A, Popli H, Grünbaum T, Bange S, Milster S, Stoltzfus DM, Leung AE, Darwish TA, Burn PL, Lupton JM, Boehme C. Floquet spin states in OLEDs. Nat Commun 2021; 12:465. [PMID: 33469009 PMCID: PMC7815916 DOI: 10.1038/s41467-020-20148-6] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/18/2020] [Accepted: 10/28/2020] [Indexed: 11/15/2022] Open
Abstract
Electron and hole spins in organic light-emitting diodes constitute prototypical two-level systems for the exploration of the ultrastrong-drive regime of light-matter interactions. Floquet solutions to the time-dependent Hamiltonian of pairs of electron and hole spins reveal that, under non-perturbative resonant drive, when spin-Rabi frequencies become comparable to the Larmor frequencies, hybrid light-matter states emerge that enable dipole-forbidden multi-quantum transitions at integer and fractional g-factors. To probe these phenomena experimentally, we develop an electrically detected magnetic-resonance experiment supporting oscillating driving fields comparable in amplitude to the static field defining the Zeeman splitting; and an organic semiconductor characterized by minimal local hyperfine fields allowing the non-perturbative light-matter interactions to be resolved. The experimental confirmation of the predicted Floquet states under strong-drive conditions demonstrates the presence of hybrid light-matter spin excitations at room temperature. These dressed states are insensitive to power broadening, display Bloch-Siegert-like shifts, and are suggestive of long spin coherence times, implying potential applicability for quantum sensing.
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Affiliation(s)
- S Jamali
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA
| | - V V Mkhitaryan
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA
| | - H Malissa
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA
| | - A Nahlawi
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA
| | - H Popli
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA
| | - T Grünbaum
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany
| | - S Bange
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany
| | - S Milster
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany
| | - D M Stoltzfus
- Centre for Organic Photonics & Electronics, School of Chemistry and Molecular Biosciences, The University of Queensland, Brisbane, QLD, 4072, Australia
| | - A E Leung
- National Deuteration Facility, Australian Nuclear Science and Technology Organization (ANSTO), Lucas Heights, NSW, 2234, Australia
- Scientific Activities Division, European Spallation Source ERIC, Lund, 224 84, Sweden
| | - T A Darwish
- National Deuteration Facility, Australian Nuclear Science and Technology Organization (ANSTO), Lucas Heights, NSW, 2234, Australia
| | - P L Burn
- Centre for Organic Photonics & Electronics, School of Chemistry and Molecular Biosciences, The University of Queensland, Brisbane, QLD, 4072, Australia
| | - J M Lupton
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, 93053, Regensburg, Germany.
| | - C Boehme
- Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.
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Liu X, Popli H, Kwon O, Malissa H, Pan X, Park B, Choi B, Kim S, Ehrenfreund E, Boehme C, Vardeny ZV. Isotope Effect in the Magneto-Optoelectronic Response of Organic Light-Emitting Diodes Based on Donor-Acceptor Exciplexes. ADVANCED MATERIALS (DEERFIELD BEACH, FLA.) 2020; 32:e2004421. [PMID: 33119173 DOI: 10.1002/adma.202004421] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/29/2020] [Revised: 09/30/2020] [Indexed: 06/11/2023]
Abstract
The isotope effect is studied in the magneto-electroluminescence (MEL) and pulsed electrically detected magnetic resonance of organic light-emitting diodes based on thermally activated delayed fluorescence (TADF) from donor-acceptor exciplexes that are either protonated (H) or deuterated (D). It is found that at ambient temperature, the exchange of H to D has no effect on the spin-dependent current and MEL responses in the devices. However, at cryogenic temperatures, where the reverse intersystem crossing (RISC) from triplet to singlet exciplex diminishes, a pronounced isotope effect is observed. These results show that the RISC process is not governed by the hyperfine interaction as thought previously, but proceeds through spin-mixing in the triplet exciplex. The observations are corroborated by electrically detected transient spin nutation experiments that show relatively long dephasing time at ambient temperature, and interpreted in the context of a model that involves exchange and hyperfine interactions in the spin triplet exciplex. These findings deepen the understanding of the RISC process in TADF materials.
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Affiliation(s)
- Xiaojie Liu
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
| | - Henna Popli
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
| | - Ohyun Kwon
- Samsung Advanced Institute of Technology, Samsung Electronics Co., Ltd., 130, Samsung-Ro, Youngtong-Gu, Suwon-Si, Gyeonggi-do, 16678, Republic of Korea
| | - Hans Malissa
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
| | - Xin Pan
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
| | - Bumwoo Park
- Samsung Advanced Institute of Technology, Samsung Electronics Co., Ltd., 130, Samsung-Ro, Youngtong-Gu, Suwon-Si, Gyeonggi-do, 16678, Republic of Korea
| | - Byoungki Choi
- Samsung Advanced Institute of Technology, Samsung Electronics Co., Ltd., 130, Samsung-Ro, Youngtong-Gu, Suwon-Si, Gyeonggi-do, 16678, Republic of Korea
| | - Sunghan Kim
- Samsung Advanced Institute of Technology, Samsung Electronics Co., Ltd., 130, Samsung-Ro, Youngtong-Gu, Suwon-Si, Gyeonggi-do, 16678, Republic of Korea
| | - Eitan Ehrenfreund
- Physics Department, Technion-Israel Institute of Technology, Haifa, 32000, Israel
| | - Christoph Boehme
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
| | - Z Valy Vardeny
- Department of Physics and Astronomy, University of Utah, 115 South 1400 East, Salt Lake City, UT, 84112, USA
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Grünbaum T, Milster S, Kraus H, Ratzke W, Kurrmann S, Zeller V, Bange S, Boehme C, Lupton JM. OLEDs as models for bird magnetoception: detecting electron spin resonance in geomagnetic fields. Faraday Discuss 2019; 221:92-109. [PMID: 31553007 DOI: 10.1039/c9fd00047j] [Citation(s) in RCA: 11] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/28/2022]
Abstract
Certain species of living creatures are known to orientate themselves in the geomagnetic field. Given the small magnitude of approximately 48 μT, the underlying quantum mechanical phenomena are expected to exhibit coherence times in the microsecond regime. In this contribution, we show the sensitivity of organic light-emitting diodes (OLEDs) to magnetic fields far below Earth's magnetic field, suggesting that coherence times of the spins of charge-carrier pairs in these devices can be similarly long. By electron paramagnetic resonance (EPR) experiments, a lower bound for the coherence time can be assessed directly. Moreover, this technique offers the possibility to determine the distribution of hyperfine fields within the organic semiconductor layer. We extend this technique to a material system exhibiting both fluorescence and phosphorescence, demonstrating stable anticorrelation between optically detected magnetic resonance (ODMR) spectra in the singlet (fluorescence) and triplet (phosphorescence) channels. The experiments demonstrate the extreme sensitivity of OLEDs to both static as well as dynamic magnetic fields and suggest that coherent spin precession processes of coulombically bound electron-spin pairs may play a crucial role in the magnetoreceptive ability of living creatures.
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Affiliation(s)
- Tobias Grünbaum
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, Universitätsstraße 31, 93053 Regensburg, Germany.
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Zhang Z, Li H, Miller R, Malissa H, Jamali S, Boehme C, Grossman JC, Ren S. Freestanding Organic Charge-Transfer Conformal Electronics. NANO LETTERS 2018; 18:4346-4354. [PMID: 29856639 DOI: 10.1021/acs.nanolett.8b01342] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/08/2023]
Abstract
Wearable conformal electronics are essential components for next-generation humanlike sensing devices that can accurately respond to external stimuli in nonplanar and dynamic surfaces. However, to explore this potential, it is indispensable to achieve the desired level of deformability and charge-transport mobility in strain-accommodating soft semiconductors. Here, we show pseudo-two-dimensional freestanding conjugated polymer heterojunction nanosheets integrated into substrate-free conformal electronics owing to their exceptional crystalline controlled charge transport and high level of mechanical strength. These freestanding and mechanical robust polymer nanosheets can be adapted into a variety of artificial structured surfaces such as fibers, squares, circles, etc., which produce large-area stretchable conformal charge-transfer sensors for real-time static and dynamic monitoring.
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Affiliation(s)
| | - Huashan Li
- Sino-French Institute of Nuclear Engineering & Technology , Sun Yat-Sen University , Tang-Jia-Wan , Zhuhai City , Guangdong Province 519-082 , PR China
- Department of Materials Science and Engineering , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 United States
| | - Richards Miller
- Department of Physics and Astronomy , University of Utah , 115 South 1400 East , Salt Lake City , Utah 84112-0830 , United States
| | - Hans Malissa
- Department of Physics and Astronomy , University of Utah , 115 South 1400 East , Salt Lake City , Utah 84112-0830 , United States
| | - Shirin Jamali
- Department of Physics and Astronomy , University of Utah , 115 South 1400 East , Salt Lake City , Utah 84112-0830 , United States
| | - Christoph Boehme
- Department of Physics and Astronomy , University of Utah , 115 South 1400 East , Salt Lake City , Utah 84112-0830 , United States
| | - Jeffrey C Grossman
- Department of Materials Science and Engineering , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 United States
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Joshi G, Teferi MY, Miller R, Jamali S, Baird D, van Tol J, Malissa H, Lupton JM, Boehme C. Isotropic Effective Spin-Orbit Coupling in a Conjugated Polymer. J Am Chem Soc 2018; 140:6758-6762. [DOI: 10.1021/jacs.8b03069] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/04/2023]
Affiliation(s)
- Gajadhar Joshi
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - Mandefro Y. Teferi
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - Richards Miller
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - Shirin Jamali
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - Douglas Baird
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - Johan van Tol
- National High Magnetic Field Laboratory, Florida State University, Tallahassee, Florida 32310, United States
| | - Hans Malissa
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
| | - John M. Lupton
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
- Institut für Experimentelle und Angewandte Physik, Universität Regensburg, Universitätsstrasse 31, 93040 Regensburg, Germany
| | - Christoph Boehme
- Department of Physics and Astronomy, University of Utah, 115 S, 1400 E, Salt Lake City, Utah 84112, United States
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Schott S, McNellis ER, Nielsen CB, Chen HY, Watanabe S, Tanaka H, McCulloch I, Takimiya K, Sinova J, Sirringhaus H. Tuning the effective spin-orbit coupling in molecular semiconductors. Nat Commun 2017; 8:15200. [PMID: 28492241 PMCID: PMC5437270 DOI: 10.1038/ncomms15200] [Citation(s) in RCA: 53] [Impact Index Per Article: 7.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/15/2016] [Accepted: 03/09/2017] [Indexed: 02/05/2023] Open
Abstract
The control of spins and spin to charge conversion in organics requires understanding the molecular spin-orbit coupling (SOC), and a means to tune its strength. However, quantifying SOC strengths indirectly through spin relaxation effects has proven difficult due to competing relaxation mechanisms. Here we present a systematic study of the g-tensor shift in molecular semiconductors and link it directly to the SOC strength in a series of high-mobility molecular semiconductors with strong potential for future devices. The results demonstrate a rich variability of the molecular g-shifts with the effective SOC, depending on subtle aspects of molecular composition and structure. We correlate the above g-shifts to spin-lattice relaxation times over four orders of magnitude, from 200 to 0.15 μs, for isolated molecules in solution and relate our findings for isolated molecules in solution to the spin relaxation mechanisms that are likely to be relevant in solid state systems.
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Affiliation(s)
- Sam Schott
- Cavendish Laboratory, University of Cambridge, Cambridge CB3 0HE, UK
| | - Erik R McNellis
- Institute of Physics, Johannes Gutenberg-Universität, 55128 Mainz, Germany
| | - Christian B Nielsen
- Department of Chemistry and Centre for Plastic Electronics, Imperial College London, London SW7 2AZ, UK.,Materials Research Institute and School of Biological and Chemical Sciences, Queen Mary University of London, Mile End Road, London E1 4NS, UK
| | - Hung-Yang Chen
- Department of Chemistry and Centre for Plastic Electronics, Imperial College London, London SW7 2AZ, UK
| | - Shun Watanabe
- Department of Advanced Materials Science, The University of Tokyo, 5-1-5 Kashiwanoha, Kashiwa, Chiba 277-8561, Japan.,JST, PRESTO, 4-1-8 Honcho, Kawaguchi, Saitama 332-0012, Japan
| | - Hisaaki Tanaka
- Department of Applied Physics, Nagoya University, Chikusa, Nagoya 464-8603, Japan
| | - Iain McCulloch
- Department of Chemistry and Centre for Plastic Electronics, Imperial College London, London SW7 2AZ, UK.,King Abdullah University of Science and Technology (KAUST), PSE, Thuwal 23955-6900, Saudi Arabia
| | - Kazuo Takimiya
- RIKEN Center for Emergent Matter Science, Wako, Saitama 351-0198, Japan
| | - Jairo Sinova
- Institute of Physics, Johannes Gutenberg-Universität, 55128 Mainz, Germany
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Kasai Y, Tamai Y, Ohkita H, Benten H, Ito S. Ultrafast Singlet Fission in a Push–Pull Low-Bandgap Polymer Film. J Am Chem Soc 2015; 137:15980-3. [DOI: 10.1021/jacs.5b09361] [Citation(s) in RCA: 64] [Impact Index Per Article: 7.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/13/2023]
Affiliation(s)
- Yukitomo Kasai
- Department
of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan
| | - Yasunari Tamai
- Department
of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan
| | - Hideo Ohkita
- Department
of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan
- Japan Science and Technology Agency (JST), PRESTO, 4-1-8 Honcho Kawaguchi, Saitama 332-0012, Japan
| | - Hiroaki Benten
- Department
of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan
| | - Shinzaburo Ito
- Department
of Polymer Chemistry, Graduate School of Engineering, Kyoto University, Katsura, Nishikyo, Kyoto 615-8510, Japan
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Keevers TL, McCamey DR. Measuring spin relaxation with standard pulse sequences in the singlet-triplet basis. JOURNAL OF MAGNETIC RESONANCE (SAN DIEGO, CALIF. : 1997) 2015; 257:70-78. [PMID: 26079758 DOI: 10.1016/j.jmr.2015.05.008] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/13/2015] [Revised: 05/11/2015] [Accepted: 05/12/2015] [Indexed: 06/04/2023]
Abstract
Pulsed electrically and optically-detected magnetic resonance are extremely sensitive to changes in the permutation symmetry of weakly-coupled spin pairs, and are well-suited for investigating devices with a small number of spins. However, the change in observable from conventional electron spin resonance modifies the results of standard inductively-detected pulse sequences which are routinely used to obtain phase coherence and lifetimes. Whilst these effects have been discussed for single-pulse experiments, their role in multi-pulse sequences is less clear. Here, we investigate this effect in Hahn echo and inversion-recovery sequences, and show a second set of narrower echoes are produced that distort measurement outcomes. We demonstrate that phase cycling is able to deconvolve the additional echo signals, allowing spin relaxation times to be reliably extracted.
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Affiliation(s)
- T L Keevers
- School of Physics, UNSW, Sydney, NSW 2052, Australia.
| | - D R McCamey
- School of Physics, UNSW, Sydney, NSW 2052, Australia.
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