Ultra-widebandgap Ga2O3 power devices for next generation power electronics
Ultra-widebandgap Ga2O3 power devices for next generation power electronics
批准号:
1607833
负责人:
Uttam Singisetti
金额:
$36.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-01 至 2020-07-31
中文摘要
与笔记本电脑和智能手机中的电子设备相比,电力电子设备控制和处理电力的流动。电力电子是将风能、太阳能和地热等可再生能源整合到未来能源网的使能技术,可实现能源和环境安全。此外,电力电子在高能效电动和混合动力汽车中具有关键作用。电力电子的核心是一个功率晶体管,它可以打开和关闭电源。能量在这个过程中以热量的形式损失。宽带隙半导体实现了新的电力电子技术,与现有的硅基技术相比,该技术可以显著降低能量损失。本文研究了一种新型宽带隙半导体材料氧化镓在高效电力电子中的应用。这种新型宽带隙半导体的基本特性将采用先进的科学方法进行探索。还将进行研究,以开发一种改变半导体导电性的技术,这对制造功率晶体管至关重要。这些研究也将增加对宽禁带半导体在其他领域具有潜在应用的理解。除了材料特性外,还将对晶体管进行电气测试,以评估功率晶体管的速度。该项目将使美国处于电力电子创新的前沿,并推动电力电子行业近期的持续增长,对美国经济产生积极影响。美国的环境和能源安全将因转换效率高和温室气体减少而得到加强。给予本科生和研究生的研究机会将有助于培养未来劳动力的技能,以适应知识经济,并保持美国的经济竞争力。研究工作将与面向本科生、高中生和理工科代表性不足的学生的教育推广活动相结合。它将增加代表性不足的少数民族和妇女在科学和工程领域的参与,提高美国在科学和工程领域的竞争力。该提案的目标是发展一个新兴的氧化镓宽带隙半导体材料性能的基本understating和开发一个高压功率晶体管。将研究通过离子注入的N型掺杂和隔离掺杂。掺杂薄膜的特点是先进的材料表征技术,包括二次离子显微镜(西姆斯),卢瑟福背散射(RBS)和电气测试结构。掺杂技术使得能够设计功率晶体管中的电场分布以增加击穿电压。 此外,电子传输性能和界面电性能将被表征。在基础研究的基础上,将制作高压功率晶体管。功率晶体管的开关速度将用双脉冲法表征。这些研究将促进对宽禁带半导体性质的理解。此外,可以将该技术与其他宽禁带半导体进行准确的比较。
英文摘要
Power electronics, in contrast to the electronics in laptops and smart phones, controls and handles the flow of power. Power electronics is the enabling technology for integration of renewable energy sources such as wind, solar, and geothermal to the future energy grid for both energy and environmental security. In addition, power electronics has a critical role in power efficient electric and hybrid cars. At the heart of power electronics is a power transistor that switches the power on and off. Energy is lost as heat during this process. Widebandgap semiconductors enable new power electronics technology that can significantly reduce the energy losses than the present silicon based technology. A new widebandgap semiconductor, gallium oxide, is investigated here for efficient power electronics. The fundamental properties of this novel widebandgap semiconductor will be explored using advanced scientific methodology. Studies will also be carried out to develop a technology to change the electrical conductivity of the semiconductor, which is essential to building the power transistor. These studies will also increase the understanding of the widebandgap semiconductor that have potential application in other fields. In addition to the materials properties, electrical testing of the transistors will be carried out to evaluate the speed of the power transistors.This project will position US at the forefront of power electronics innovation and propel the recent continued growth of the power electronics industry with positive outcomes on the US economy. The environmental and energy security of US will be enhanced due to high efficiency in switching and reduced greenhouse gases. The research opportunity given to undergraduate and graduate students will help build the skills of the future workforce for knowledge based economy and maintain the economic competitiveness of the US. The research effort will be integrated with educational outreach activities for undergraduates, high-school students and under-represented students in science and engineering. It will increase the participation of underrepresented minority and women in the field of science and engineering enhancing US competitiveness in science and engineering.The objectives of the proposal is to develop a fundamental understating of the materials properties of the emerging gallium oxide widebandgap semiconductor and develop a high voltage power transistor. N-type doping and isolation doping by ion-implantation will be investigated. The doped films will be characterized by advanced materials characterization techniques including secondary ion microscopy (SIMS), Rutherford backscattering (RBS) and also by electrical test structures. The doping technology enables the engineering of the electric field profile in the power transistor to increase the breakdown voltage. In addition the electron transport properties and interface electrical properties will be characterized. Building upon the fundamental studies, high voltage power transistors will be fabricated. The switching speed of the power transistors will be characterized by double pulse method. These studies will be advance the understanding of the widebandgap semiconductor properties. In addition, an accurate comparison of the technology with other widebandgap semiconductors can be made.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Conference: 6th US Gallium Oxide Workshop
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批准号:2324760
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项目类别:Standard Grant
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资助金额:$1.4万
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财政年份:2023
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负责人:Uttam Singisetti
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依托单位:
MRI: Acquisition of Magento-optical-high-frequency cryogen free probe station for research and education
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批准号:2215937
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项目类别:Standard Grant
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资助金额:$24.27万
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财政年份:2022
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负责人:Uttam Singisetti
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依托单位:
ASCENT: Enabling efficient high power grid applications by high voltage rating ultrawidebandgap transistors
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批准号:2231026
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项目类别:Standard Grant
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资助金额:$150.0万
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财政年份:2022
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负责人:Uttam Singisetti
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依托单位:
Collaborative Research: Beta-Ga2O3 high voltage power MOSFETs using metal-organic chemical vapor deposition
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批准号:2019749
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项目类别:Standard Grant
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资助金额:$27.3万
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财政年份:2020
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负责人:Uttam Singisetti
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依托单位:
MRI:Acquisition of Ultra high Performance Electron Beam Lithography System for the Western New York Region
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批准号:1919798
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项目类别:Standard Grant
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资助金额:$100.0万
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财政年份:2019
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负责人:Uttam Singisetti
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依托单位:
海外基金