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Adhesion and Interfacial Fracture: From Organic Light Emitting Devices and Photovoltaic Cells to Solar Lanterns for Developing Regions.

机译:粘附力和界面断裂:从有机发光器件和光伏电池到发展中地区的太阳能电池。

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摘要

From that “ah-ha!” moment when a new technology is first conceived until the time that it reaches the hands of consumers, products undergo numerous iterations of research, development, testing, and redesign in order to create an end-product that is relevant, desirable, functional, and affordable. One crucial step, particularly for electronic devices, is a rigorous testing stage to ensure that a product will be able to withstand regular wear-and-tear. An understanding of how, when, and under what conditions a technology will fail is important in improving device performance and creating high quality products that consumers trust.;Understanding that success is inherently tied to failure, this thesis focuses on studies of mechanical failure related to two types of electronic devices: solar cells and light emitting devices. By considering the interfaces that are relevant to the next generation of solar cells and light emitting devices that are built using organic conducting polymers, an atomic force microscopy test is introduced to characterize and rank the relative interfacial adhesion between layers at the nano-scale. These results have implications for material selection that can enhance device processing and performance. This method is then linked to fracture mechanics techniques that determine critical loading forces that induce separation and, hence, mechanical failure between layers of these devices. These results demonstrate the effect of nano-scale interactions on macro-scale behavior, and are particularly valuable in product testing as flexible electronics gain interest. Finally, a case study is conducted in Rural Kenya that measures the impact of commercially-available LED lanterns that are charged by solar panels on a community that is disconnected from the power grid. By demonstrating the value of these lanterns for the community, the role of device reliability and lifetime is examined in underscoring the critical need for proper device testing before product commercialization.
机译:从那个“啊哈!”从最初构思出新技术直到获得消费者的那一刻,产品就经过了无数次研究,开发,测试和重新设计的迭代,以创建具有相关性,理想性,功能性和可负担性的最终产品。 。至关重要的一步,特别是对于电子设备,是严格的测试阶段,以确保产品能够经受常规的磨损。了解技术将如何,何时以及在什么情况下会发生故障对于提高设备性能和创建消费者信任的高质量产品很重要。;由于成功与失败有内在的联系,因此本文重点研究与故障相关的机械故障。两种类型的电子设备:太阳能电池和发光设备。通过考虑与使用有机导电聚合物构建的下一代太阳能电池和发光器件相关的界面,引入了原子力显微镜测试,以纳米尺度表征和排列各层之间的相对界面粘附力。这些结果对可以增强器件处理和性能的材料选择产生影响。然后,该方法与断裂力学技术相关联,该技术确定了导致分离的临界载荷力,进而导致这些设备各层之间的机械故障。这些结果证明了纳米级相互作用对宏观行为的影响,并且随着柔性电子学的发展,在产品测试中特别有价值。最后,在肯尼亚农村地区进行了一项案例研究,该案例研究了由太阳能电池板充电的市售LED灯对与电网断开连接的社区的影响。通过向社区展示这些灯笼的价值,检验了设备可靠性和使用寿命的作用,强调了在产品商业化之前正确进行设备测试的关键需求。

著录项

  • 作者

    Tong, Tiffany Michelle.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Engineering Electronics and Electrical.;Engineering Materials Science.;Sociology Public and Social Welfare.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 263 p.
  • 总页数 263
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:47

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