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CAREER: Controlling the Morphology of Polymer/Fullerene Solar Cells

CAREER: Controlling the Morphology of Polymer/Fullerene Solar Cells
职业:控制聚合物/富勒烯太阳能电池的形态
批准号:
1151468
负责人:
Gila Stein
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-06-01 至 2017-02-28

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中文摘要
翻译
技术概述:本研究计划的目标是确定控制聚合物/富勒烯太阳能电池光电功能的关键形态参数。聚合物太阳能电池中的有源层通常是通过阻止聚合物/富勒烯共混物的相分离来制备的。这种非平衡过程形成的结构很难控制和准确表征,因此很难理解薄膜的形态如何影响器件的效率。该奖项将开发三个综合任务,分别研究区域大小、界面面积和聚合物结晶度对电荷产生、复合和传输过程的影响。首先,利用电子束图案化技术制备导电聚合物纳米结构。这些纳米结构具有耐溶剂性和热稳定性,并且纳米结构几何形状、聚合物结晶度和聚合物交联密度等变量都是可调的。其次,利用建立的光谱和器件表征技术对模型纳米结构/富勒烯太阳能电池的光电性能进行了评估。最后,通过对X射线散射数据的详细分析,准确地定量了微区尺寸、界面面积和结晶度。这项工作的一个特别的重点是界面工程:假设聚合物/富勒烯的界面组成可以通过聚合物的交联度(除了温度和时间)来控制,这为研究界面对电荷产生和损失的影响提供了一种简单的途径。通过这些系统研究获得的知识将确定基准聚合物/富勒烯体系的最佳设计属性,并指导各种高性能材料的形态优化。非技术综述:聚合物太阳能电池显示出低成本太阳能转换的前景,但在功率输出得到改善之前,这项技术作为替代能源是不可行的。这项研究计划通过建立一个系统来研究活性层结构和电子功能之间的关系,从而促进了这些改进。这些发现将有助于优化聚合物太阳能电池的效率。教育和外展活动在四个方面与这一研究计划相结合。首先,PI鼓励高中、本科生和研究生的不同群体参与研究,并参与许多K-12推广计划,将聚合物科学介绍给科学和工程领域中代表性不足的群体。其次,学生将通过一门新的纳米制造课程和一个教授X射线散射基础知识的多机构研讨会,为多学科研究配备必要的技能。第三,通过与当地休斯顿材料行业的联系,学生将了解用于能源转换和储存的聚合物的商业化。最后,为了提高学生参与者的全球意识,国际和平研究所将与韩国高级科学技术研究所协调互补的研究合作。
英文摘要
TECHNICAL SUMMARY: The objective of this research program is to identify the critical morphological parameters that control optoelectronic function in polymer/fullerene solar cells. The active layer in polymer-based solar cells is usually prepared by arresting the phase separation of a polymer/fullerene blend. The structures formed with this non-equilibrium process are difficult to control and accurately characterize, so it is hard to understand how film morphology influences the device efficiency. This award will develop three integrated tasks to investigate the effects of domain size, interfacial area and polymer crystallinity on charge generation, recombination, and transport processes, respectively. First, conductive polymer nanostructures are prepared by electron-beam patterning. These nanostructures are solvent-resistant and thermally-stable, and variables such as nanostructure geometry, polymer crystallinity, and polymer cross-link density are all tunable. Second, the optoelectronic performance of model nanostructure/fullerene solar cells is evaluated with established spectroscopic and device characterization techniques. Last, domain size, interfacial area, and crystallinity are accurately quantified with detailed analysis of X-ray scattering data. A particular focus of this work is interfacial engineering: It is hypothesized that polymer/fullerene interfacial composition profiles can be controlled through polymer cross-link density (in addition to annealing temperature and time), offering a simple route to study the effects of interfaces on charge generation and losses. The knowledge acquired through these systematic studies will identify the optimal design attributes for a benchmark polymer/fullerene system and guide morphology optimization for a variety of high-performance materials. NON-TECHNICAL SUMMARY: Polymer-based solar cells show promise for low-cost solar energy conversion, but the technology will not be viable as an alternative source of energy until the power output is improved. This research program facilitates those improvements by establishing a system to study the relationships between active layer structure and electronic function. These findings will help optimize the efficiency of polymer-based solar cells. Education and outreach activities are integrated with this research program in four ways. First, the PI encourages research participation for a diverse pool of high school, undergraduate and graduate students, and participates in numerous K-12 outreach programs that introduce polymer science to under-represented groups in science and engineering. Second, students will be equipped with the necessary skills for multidisciplinary research through a new nanofabrication course and a multi-institutional workshop that will teach the fundamentals of X-ray scattering. Third, through connections to the local Houston materials industry, students will learn about commercialization of polymers for energy conversion and storage. Finally, to enhance the global awareness of student participants, the PI will coordinate complementary research collaborations with the Korea Advanced Institute of Science and Technology.
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会议论文
Collaborative Research: Solution Processing with Entropy-Controlled Stratification of Architecturally-Complex Polymer Blends
  • 批准号:
    1934061
  • 项目类别:
    Standard Grant
  • 资助金额:
    $26.35万
  • 财政年份:
    2020
  • 负责人:
    Gila Stein
  • 依托单位:
Tunable Enthalpic and Entropic Interactions in Blends of Block Copolymers and Polymeric Additives
  • 批准号:
    1905487
  • 项目类别:
    Standard Grant
  • 资助金额:
    $45.0万
  • 财政年份:
    2019
  • 负责人:
    Gila Stein
  • 依托单位:
Student Scholarships for 2019 DPOLY Workshop on X-ray and Neutron Scattering for Polymer Science
  • 批准号:
    1916324
  • 项目类别:
    Standard Grant
  • 资助金额:
    $0.5万
  • 财政年份:
    2019
  • 负责人:
    Gila Stein
  • 依托单位:
MRI: Acquisition of a Multi-Mode X-Ray Scattering System for Soft Materials Characterization
  • 批准号:
    1827474
  • 项目类别:
    Standard Grant
  • 资助金额:
    $52.57万
  • 财政年份:
    2018
  • 负责人:
    Gila Stein
  • 依托单位:
海外基金