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Piezoelectric microresonators on Si for inductor free embedded (on-chip) power converters in PV powered autonomous microsystems.

机译:Si上的压电微谐振器,用于PV供电的自治微系统中的无电感嵌入式(片上)功率转换器。

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摘要

Microelectromechanical systems (MEMS) resonators on Si have the potential to replace the discrete passive components in a power converter. The main intention of this dissertation is to present a ring-shaped aluminum nitride (AlN) piezoelectric microresonator that can be used as an energy-transferring device to replace inductors/capacitors in low power resonant converters for biomedical applications in Autonomous Microsystems. The zero voltage switching (ZVS) condition for a series resonant converter incorporating the proposed MEMS resonator has been presented analytically and verified through experiment. This ZVS condition can be found in terms of the equivalent circuit parameters of the resonator. To the best of my knowledge, a ZVS model for thin film devices has not yet been reported in the literature. A CMOS-compatible fabrication process has been proposed and implemented. In addition, the fabricated devices have been characterized, and experimental results are included. The first contour mode AlN MEMS resonator with moderately low resonant frequency and motional resistance is reported in this dissertation with measured resonant frequency and motional resistance of 87.28 MHz and 36.728 O, respectively. The first part of this dissertation discusses the feasibility of a PV powered autonomous microsystem. The reliability, efficiency, and controllability of PV power systems can be increased by embedding the components of a typical power converter on the same Si substrate of a PV cell. In order to achieve more insight of the macro or surface electronics, a novel fabrication process along with experimental results has been presented in this dissertation demonstrating the integration of PV cells and major components needed to build a power converter on the same substrate/wafer. Because of the cell level power conversion, PV panels constructed from these cells are likely to be immune to partial shading and hot-spot effects. The effect of light exposure on converter switches has been analyzed to understand the converter behavior at various illumination levels. Simulation and experimental results have been provided to support this analysis. In addition to the process-related challenges and issues, this work explains the justification of this integration by achieving higher reliability, portability, and complete modular construction for PV based energy harvesting units for autonomous microsystems.
机译:Si上的微机电系统(MEMS)谐振器有潜力替代功率转换器中的分立无源组件。本文的主要目的是提出一种环形的氮化铝(AlN)压电微谐振器,该谐振器可以用作能量传输设备,以替代自治微系统中用于生物医学应用的低功率谐振转换器中的电感器/电容器。分析提出并通过实验验证了包含拟议的MEMS谐振器的串联谐振转换器的零电压开关(ZVS)条件。可以根据谐振器的等效电路参数找到这种ZVS条件。据我所知,文献中尚未报道用于薄膜器件的ZVS模型。已经提出并实现了CMOS兼容的制造工艺。此外,已对制成的器件进行了表征,并包括了实验结果。本论文报道了具有较低谐振频率和运动电阻的第一轮廓模式AlN MEMS谐振器,测得的谐振频率和运动电阻分别为87.28 MHz和36.728O。本文的第一部分讨论了光伏动力自主微系统的可行性。通过将典型功率转换器的组件嵌入到PV电池的同一Si基板上,可以提高PV电力系统的可靠性,效率和可控性。为了获得对宏观或表面电子学的更多了解,本文提出了一种新颖的制造工艺以及实验结果,证明了PV电池与在同一衬底/晶片上构建功率转换器所需的主要组件的集成。由于电池级的功率转换,由这些电池构成的光伏面板可能不受部分阴影和热点影响。已经分析了曝光对转换器开关的影响,以了解转换器在各种照明水平下的行为。提供了仿真和实验结果来支持这一分析。除了与过程相关的挑战和问题外,这项工作还通过为自动化微系统的基于PV的能量收集单元实现更高的可靠性,可移植性和完整的模块化构造,来说明这种集成的合理性。

著录项

  • 作者

    Imtiaz, Abu Saleh Mohammad.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Electrical engineering.;Computer science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:30

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