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Collaborative Research: On the Origin of Atomic Layer Deposition Enhanced Activity and Stability of Nanostructured Cathodes for Intermediate-temperature Solid Oxide Fuel Cells

Collaborative Research: On the Origin of Atomic Layer Deposition Enhanced Activity and Stability of Nanostructured Cathodes for Intermediate-temperature Solid Oxide Fuel Cells
合作研究:中温固体氧化物燃料电池纳米结构阴极的原子层沉积增强活性和稳定性的起源
批准号:
1464111
负责人:
Xinhua Liang
金额:
$18.78万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-08-01 至 2021-12-31

项目摘要

项目成果

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中文摘要
翻译
非技术描述:在这个由材料研究部陶瓷项目支持的合作项目中,Kevin Huang教授和Xinhua Liang教授正在开发用于中温固体氧化物燃料电池(IT-SOFC)的高活性和稳定的纳米结构阴极。IT-SOFC是一种具有商业可行性的高效低排放动力产品,具有替代传统内燃机的巨大潜力。目前用于IT-SOFC的阴极是具有高催化活性的纳米结构,但不幸的是不稳定,在操作过程中逐渐失去活性。该项目的重点是用原子层沉积(ALD)稳定纳米结构阴极,并了解ALD工艺显著增强纳米结构阴极稳定性和活性的原因。从该项目中获得的基本知识预计将有助于了解催化社区中观察到的活性-稳定性困境,并在开发商业IT-SOFC的新活性和稳定阴极方面发挥重要作用。该项目资助一名女研究生和一名少数民族大学生。技术支持:IT-SOFC成功的关键是开发高活性和稳定的阴极。目前的纳米结构活性阴极在高温下不稳定。该项目旨在开发活性和稳定的纳米结构阴极,并通过综合的“理论假设”和“实验验证”方法研究增强催化活性和稳定性的基础科学。一个多功能的缺陷化学模型,需要纳米级的孔隙率,混合氧化物离子和电子导电性,锶偏析抑制和形态稳定的理论基础正在研究。一套先进的原位,在operando和非原位表面分析技术被用来系统地探测轮廓的化学和电子状态和表面/亚表面相和形态演变的定义明确的外延异质结构,收集关键的实验证据验证和/或修改模型。也正在研究图案化电极薄膜结构的电催化电荷传输机制,以收集个性化的电化学性能,并将它们与表面化学结果相关联。研究生和本科生,包括少数民族和其他代表性不足的群体的成员,通过明确确定和重点研究项目在这项研究中发挥积极作用。该项目的重要性和潜在影响正在通过南加州大学和密苏里州ST的特别外展计划向公众传播。南加州大学正在为研究生开设一门新课程。与本尼迪克特学院,一个历史上的黑人学院,联合教育计划,先前已经建立了目标,以促进教育和劳动力发展的代表性不足的学生。
英文摘要
NON-TECHNICAL DESCRIPTION: In this collaborative project supported by the Ceramics Program in the Division of Materials Research, Professor Kevin Huang and Professor Xinhua Liang are developing highly active and stable nanostructured cathodes for intermediate-temperature solid oxide fuel cells (IT-SOFCs). IT-SOFCs are a commercially viable high-efficiency and low-emission power product with a great potential to replace conventional internal combustion engines. The current cathodes for IT-SOFCs are nanostructured with high catalytic activity, but are unfortunately unstable, gradually losing their activity during operation. This project focuses on stabilizing nanostructured cathodes with atomic layer deposition (ALD) and understanding the reason behind why stability and activity of nanostructured cathodes are significantly enhanced by the ALD process. The fundamental knowledge gained from this project is expected to contribute to the understanding of the activity-stability dilemma observed in the catalysis community and play a significant role in developing new active and stable cathodes for commercial IT-SOFCs. The project supports one female graduate student and one minority undergraduate student.TECHNICAL DETAILS: A key to the success of IT-SOFCs is to develop highly active and stable cathodes. The current nanostructured active cathodes are unstable at elevated temperatures. This project is aimed at developing active and stable nanostructured cathodes and investigating the fundamental science underpinning the enhanced catalytic activity and stability through an integrated "theoretical hypothesis" and "experimental validation" approach. A multifunctional defect-chemistry model entailing nanoscale porosity, mixed oxide-ionic and electronic conductivity, Sr-segregation suppression and morphological stabilization is being investigated as the theoretical basis. A suite of advanced in situ, in operando and ex situ surface analysis techniques is being utilized to systematically probe the profiles of chemical and electronic states and surface/sub-surface phase and morphology evolutions of well-defined epitaxial heterostructures to gather key experimental evidence for validating and/or modifying the model. The electrocatalytic charge-transport mechanisms are also being investigated on patterned electrode thin-film structures to collect the individualized electrochemical properties and correlate them with the surface chemistry results. Both graduate and undergraduate students including members of minority and other underrepresented groups play an active role in this research through clearly identified and focused research projects. The importance and potential impact of the project are being disseminated to the general public via special outreach programs at USC and Missouri S&T. A new course is being created for graduate students at USC. A joint educational program with Benedict College, a historically black college, has been previously established with the goal to promote education and workforce development for underrepresented students.
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Highly Selective, Active, and Stable Metal Nanoparticle Catalysts with Ultra-Thin Porous Ceramic Shells for Size-Selective Chemical Reactions
  • 批准号:
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  • 项目类别:
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