Designing light-matter hybrid states for high-performance organic (opto)electronics
Designing light-matter hybrid states for high-performance organic (opto)electronics
批准号:
1808258
负责人:
Oksana Ostroverkhova
金额:
$45.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-01 至 2022-07-31
中文摘要
非技术描述:有机分子与光之间的相互作用可能形成一种混合的光-物质状态(极化)。这种状态具有令人着迷的光学和电学性质,无论是从基础物理还是从应用的角度来说都是令人感兴趣的。极化激元的应用包括激光器、传感器、实现光通信和信息处理的设备以及许多其他应用。在这个项目中,使用实验和计算相结合的方法来探索极化激元的性质,目标是设计利用极化激元增强的光发射和/或导电性的下一代有机光电材料和器件结构。该项目将基础物理与材料设计和设备技术相结合,从而为参与该项目的研究生和本科生提供独特的教育资源和基础设施,包括那些来自代表性不足的群体的学生。研究人员根据项目的结果和相关概念开发教育材料,并参与各种各样的外联活动,包括为不同受众进行基于实验室的演示,以及参与大学和整个系的外联活动。技术描述:有机(光学)电子材料因其低成本和可调节的特性而引起人们的兴趣,并已展示了广泛的应用。有机微腔中依赖于强激子-光子耦合的应用是其中一个取得巨大进展的领域。尽管对有机材料中强激子-光子耦合进行了大量的理论和实验工作,但关于混合光物质(极化)态的性质和性质仍有许多基本问题尚未解决。解决其中的一些问题,并为最近的一些理论预测提供实验验证,例如暗极化子(一种具有独特光物理特性的混合态),是本研究的目标。特别是,系统地研究了混合轻质态的光物理及其在有机半导体模型中增强电荷输运的能力,这些模型有机半导体被选为可溶液处理的官能化并吩衍生物。为此,各种形式的光学和光致发光光谱与电荷载流子动力学测量和数值模拟相结合。这项研究的最终目标是确定微腔和等离子体纳米结构衬底上混合轻质态的性质和性质,并量化这种态在有机晶体材料中增强相干电荷传输的潜力。更具体地说,研究团队试图确定极化子的性质是如何根据有机半导体中激子状态、分子堆积和无序的性质而演变的,并为通过相干混合状态增强高性能有机半导体中的电荷载流子迁移率和光电流奠定基础。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Non-technical Description: Interactions between organic molecules and light may enable formation of a hybrid light-matter state (polariton). Such state has fascinating optical and electronic properties which are of interest both from the fundamental physics and from the applications perspective. The applications of polaritons include lasers, sensors, devices enabling optical communications and information processing, and many others. In this project, properties of polaritons are explored using a combination of experimental and computational approaches with the goal of designing next-generation organic optoelectronic materials and device architectures that utilize enhanced light emission and/or conductivity enabled by polaritons. The project integrates fundamental physics with materials design and device technologies, thus providing unique educational resources and infrastructure for graduate and undergraduate students, including those from underrepresented groups, involved in this project. The investigators develop educational materials based on the results of the project and related concepts and participate in a broad variety of outreach activities ranging between lab-based demonstrations for various audiences and participation in university-wide and department-wide outreach initiatives.Technical Description: Organic (opto)electronic materials are of interest due to their low cost and tunable properties appropriate a broad range of applications has been demonstrated. One of the areas that has seen a dramatic progress is the applications relying on strong exciton-photon coupling in organic microcavities. In spite of considerable amount of theoretical and experimental work on strong exciton-photon coupling in organic materials, there is still a number of unresolved fundamental issues pertaining to the nature and properties of hybrid light-matter (polariton) states. Resolving some of these issues and providing experimental validation for some of the recent theoretical predictions, exemplified by that of a dark polariton (a hybrid state with unique photophysical characteristics), is the goal of the present research. In particular, a systematic investigation of photophysics of hybrid light-matter states and their ability to enhance charge transport in model organic semiconductors, chosen to be solution-processable functionalized acene and anthradithiophene derivatives, is carried out. For this, various modalities of optical and photoluminescence spectroscopy are combined with measurements of charge carrier dynamics and with numerical simulations. The ultimate goal of the research is to establish the nature and properties of hybrid light-matter states in microcavities and on plasmonic nanostructured substrates and to quantify the potential of such states to enhance coherent charge transport in organic crystalline materials. More specifically, the research team seeks to establish how the properties of polaritons evolve depending on the nature of excitonic states in the organic semiconductor, molecular packing and disorder, and to lay foundations for enhancing charge carrier mobility and photocurrent in high-performance organic semiconductors via coherent hybrid states.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(6)
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Strong exciton–plasmon coupling in dye-doped film on a planar hyperbolic metamaterial
平面双曲超材料上的染料掺杂薄膜中的强激子与等离子体激元耦合
DOI:
10.1364/ol.402210
发表时间:
2020
期刊:
Optics Letters
影响因子:
3.6
作者:
[Tanyi, E. K., Hong, N., Sawyer, T., Van Schenck, J. D. B., Giesbers, G., Ostroverkhova, O., Cheng, L. -J.]
通讯作者:
Cheng, L. -J.
Strong exciton—photon coupling in anthradithiophene microcavities: from isolated molecules to aggregates
蒽并噻吩微腔中的强激子-光子耦合:从孤立的分子到聚集体
DOI:
10.1557/mrc.2019.101
发表时间:
2019
期刊:
MRS Communications
影响因子:
1.9
作者:
[Van Schenck, J. D., Tanyi, E. K., Cheng, L.-J., Anthony, J., Ostroverkhova, O.]
通讯作者:
Ostroverkhova, O.
DOI:
10.1016/j.orgel.2018.12.040
发表时间:
2019-04
期刊:
Organic Electronics
影响因子:
3.2
作者:
[Keshab Raj Paudel;G. Giesbers;J. Schenck;J. Anthony;O. Ostroverkhova]
通讯作者:
Keshab Raj Paudel;G. Giesbers;J. Schenck;J. Anthony;O. Ostroverkhova
Exciton Polaritons Reveal “Hidden” Populations in Functionalized Pentacene Films
激子极化子揭示功能化并五苯薄膜中的“隐藏”族群
DOI:
10.1021/acs.jpcc.1c08257
发表时间:
2021
期刊:
The Journal of Physical Chemistry C
影响因子:
--
作者:
[Van Schenck, Jonathan D., Goldthwaite, Winston T., Puro, Richard, Anthony, John E., Ostroverkhova, Oksana]
通讯作者:
Ostroverkhova, Oksana
Strong Coupling in Microcavities for Enhancing Photostability of High-Performance Organic Semiconductors
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批准号:1956431
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项目类别:Continuing Grant
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资助金额:$38.26万
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财政年份:2020
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负责人:Oksana Ostroverkhova
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依托单位:
SusChEM: Naturally produced fungal compounds for sustainable (opto)electronics
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批准号:1705099
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项目类别:Standard Grant
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资助金额:$41.0万
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依托单位:
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批准号:1207309
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资助金额:$38.95万
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财政年份:2012
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负责人:Oksana Ostroverkhova
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依托单位:
CAREER: Charge Carrier Dynamics in Organic Semiconductors: from Macroscopic to Microscopic Level
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批准号:0748671
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项目类别:Continuing Grant
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资助金额:$53.51万
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财政年份:2008
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负责人:Oksana Ostroverkhova
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依托单位:
国内基金
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