EAGER: Room-Temperature Fabrication of Electroceramics
EAGER: Room-Temperature Fabrication of Electroceramics
批准号:
2040102
负责人:
Rick Ubic
金额:
$29.73万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-10-01 至 2022-03-31
中文摘要
现代电子电路包含多种材料,但由于化学、致密性和/或热膨胀方面的不兼容性,在加工过程中将不同材料一起加热是困难的。通常需要高温,但迫切需要创新的设计原则,这将允许在400°C的温度下用有机或半导体材料和银电极加工电陶瓷。室温制造方法就是这样一种技术。不幸的是,许多电气性能只有在随后的加热后才会改善;因此,这个探索性研究(EAGER)项目的早期概念资助的目标是确定所涉及的致密化机制/动力学,从而开发具有有用电性能的室温可加工电容器氧化物,可应用于整个电陶瓷工业,以降低成本,能源消耗,以及随之而来的温室气体排放。这项研究直接支持了美国持续的竞争力,并支持了许多促进国家安全的商业国防应用。这项研究与教育的整合将通过几种方式实现,包括被纳入陶瓷加工在线研究生课程。由于不同材料在高温下的化学不相容性以及烧结行为和热膨胀的差异,共烧是困难的。由于缓慢的、热激活的扩散过程,致密化通常需要高温。在烧结过程中施加压力可以增强驱动力;然而,迫切需要创新的设计原则,使电陶瓷组合物能够在400°C的温度下与有机或半导体结构和银电极共烧。室温制造方法可能是一种这样的技术,但所涉及的物理学尚未完全理解,其对功能陶瓷性质的影响也尚未完全理解。该项目的目标是使用原位透射电子显微镜研究来确定所涉及的致密化机制/动力学,并在此过程中对氧化物室温致密化的机制和动力学有更全面的了解。有了这些信息,目标是开发超低温烧结电容器氧化物,其相对介电常数高达~200,损耗切线在射频范围内为0.1。该方法包括使用水溶液作为瞬态溶剂,通过介导的溶解-沉淀过程来影响陶瓷粉末的致密化。不幸的是,许多介电性能只有在退火后才能改善,以消除应变、二次相、晶界和导致电子/离子运动的点缺陷。本研究的目标是开发在超低温下致密的陶瓷介电材料,并在没有任何额外热处理的情况下表现出微电子应用所需的性能。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值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
Modern electronic circuits contain many kinds of materials, but heating different materials together during processing is difficult due to incompatibilities in chemistry, densification behavior, and/or thermal expansion. High temperatures are typically required, but there is an urgent need for innovative design principles which would allow electroceramics to be processed with organic or semiconductive materials and silver electrodes at temperatures 400°C. The room-temperature fabrication method could be one such technology. Unfortunately, many electrical properties improve only after subsequent heating; thus, the goal of this EArly-concept Grant for Exploratory Research (EAGER) project is to determine the densification mechanisms/kinetics involved and thereby develop room-temperature processable capacitor oxides with useful electrical properties which can be applied throughout the electroceramics industry to lower costs, energy consumption, and consequent greenhouse gas emissions. This research directly supports the continued US competitiveness and supports many commercial defense applications promoting national security. The integration of this research with education will be achieved in several ways, including being included in a Ceramic Processing online graduate course.Co-firing different materials is difficult due to chemical incompatibility at high temperatures as well as differences in sintering behavior and thermal expansion. Due to the slow, thermally-activated diffusional processes, high temperatures are typically required for densification. It is possible to enhance the driving force by the application of pressure during sintering; however, there is an urgent need for innovative design principles which would allow electroceramic compositions to be co-fired with organic or semiconductive structures and silver electrodes at temperatures 400°C. The room-temperature fabrication method could be one such technology, but the physics involved are not yet completely understood, nor are its implications for the properties of functional ceramics. The goal of this project would be to use in situ transmission electron microscopy studies to determine the densification mechanisms/kinetics involved, and in so doing develop a fuller understanding of the mechanisms and kinetics of the room-temperature densification of oxides. With this information, the aim is to develop ultra-low-temperature sinterable capacitor oxides with relative permittivities up to ~200 and loss tangents 0.1 in the radio frequency range. The method involves the use of aqueous solutions as transient solvents to effect densification of ceramic powders via a mediated dissolution–precipitation process. Unfortunately, many dielectric properties improve only after annealing to remove strain, secondary phases, grain boundaries, and point defects which can lead to electron/ion motion. The goal of this research is to develop ceramic dielectric materials which densify at ultra-low temperatures and exhibit the requisite properties for microelectronic applications without any additional thermal processing.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(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1016/j.jeurceramsoc.2022.04.002
发表时间:
2022-04
期刊:
Journal of the European Ceramic Society
影响因子:
5.7
作者:
[Evan Smith;A. Block;R. Ubic]
通讯作者:
Evan Smith;A. Block;R. Ubic
REU Site: Materials for Society
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批准号:1950305
-
项目类别:Standard Grant
-
资助金额:$42.58万
-
财政年份:2020
-
负责人:Rick Ubic
-
依托单位:
REU Site: Materials for Society
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批准号:1658076
-
项目类别:Standard Grant
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资助金额:$38.5万
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财政年份:2017
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负责人:Rick Ubic
-
依托单位:
REU Site: Materials for Energy & Sustainability
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批准号:1359344
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项目类别:Continuing Grant
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资助金额:$32.0万
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财政年份:2014
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负责人:Rick Ubic
-
依托单位:
The Role of Point Defects in the Structure and Properties of Perovskites for Functional Applications
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批准号:1052788
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项目类别:Continuing Grant
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资助金额:$62.87万
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财政年份:2010
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负责人:Rick Ubic
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依托单位:
海外基金