globalchange  > 全球变化的国际研究计划
项目编号: 1703827
项目名称:
INFEWS N/P/H2O: SusChEM: Collaborative: Controlling Spatial Composition of Nonprecious Metal-based Heteronanostructures for Enhanced Electrocatalytic Performance
作者: Jingyi Chen
承担单位: University of Arkansas
批准年: 2017
开始日期: 2017-09-01
结束日期: 2020-08-31
资助金额: 449983
资助来源: US-NSF
项目类别: Standard Grant
国家: US
语种: 英语
特色学科分类: Engineering - Chemical, Bioengineering, Environmental, and Transport Systems
英文关键词: novel heteronanostructure ; specific spatial composition ; novel nonprecious nanostructure ; composition-activity relationship ; nonprecious metal nanocatalyst ; project ; electrocatalytic activity ; performance-competitive catalyst ; electrocatalytic nitrogen reduction reaction ; water ; nonprecious metal bimetallic catalyst ; performance metric ; nonprecious fe-ni bimetal ; nh3 ; spatial composition ; nonprecious nanoparticle catalyst ; oer
英文摘要: The project addresses catalytic electrochemical processes related to the production of ammonia (NH3) from water and nitrogen, and the oxygen evolution reaction (OER) needed to split water to produce hydrogen for energy storage and fuel and chemical production. Both processes offer alternatives to conventional processes that rely on hydrocarbon resources for the needed hydrogen. Thus the project will support NSF's initiatives in the areas of sustainable energy generation and Innovations at the Nexus of Food, Energy, and Water (INFEWS), the latter via the importance of NH3 as the world's primary raw material for nitrogen-based fertilizer production. In particular, the research is aimed at discovering efficient, nonprecious metal nanocatalysts for the targeted electrochemical processes that can operate at ambient temperature conditions rather than the high-temperature conditions required for hydrocarbon-based technologies. The electrocatalytic nitrogen reduction reaction (NRR) has the potential to generate NH3 at lower net energy consumption than the traditional Haber-Bosch thermal catalytic process which accounts for between 1 and 2% of world energy consumption.

Specifically, the project seeks advances in catalytic electrolyzers for both NRR and OER. The work will focus exclusively on nonprecious metal bimetallic catalysts operating in alkaline electrochemical environments, thus enabling low-cost, technology-enabling alternatives to the precious metals. The project is built on preliminary data suggesting that specific control of the spatial composition and morphology of heterostructured nanoparticles will enable enhanced catalytic activity and also establish fundamental understanding of composition-activity relationships for key bimetallic systems in nanoparticle form. The specific research objectives are: (1) to synthesize and characterize novel heteronanostructures of nonprecious Fe-Ni bimetals composed of a hetero-core with/without an alloyed shell, (2) to evaluate the reactivity and selectivity of the catalysts for electrochemical NRR and OER in alkaline systems, and (3) to develop in operando methods to correlate the structure and composition with electrocatalytic activity using x-ray absorption spectroscopy. Beyond the targeted reactions, introduction of low-cost, nonprecious nanoparticle catalysts are of increasing interest for a broad range of catalytic applications, including electrocatalysis. Validation of the proposed novel nonprecious nanostructures, where specific spatial composition is correlated with the performance metrics and in operando characterization, will enable an approach to catalyst design that could be widely applied to enable cost- and performance-competitive catalysts for commercialization. Furthermore, controlling catalyst selectivity through structural design would enable key advances for important reactions related to water treatment, energy conversion, and agriculture. To support this objective, an integrated approach of research and education will be established to increase student participation in STEM research, to pursue STEM majors, and to train next-generation leaders in the interdisciplinary field of nanocatalysts. The investigators will actively recruit students, especially unrepresented student groups, to their research programs. The research findings will be integrated into teaching for undergraduate and graduate curriculum development in both Chemistry and Chemical Engineering departments. In addition, the investigators will strengthen the current summer programs by involving K-12 teachers through American Chemical Society Science Coaches and the University of Arkansas Engineering Academy Programs, as well as organizing an annual workshop for students and K-12 teachers on Nanocatalyst Discovery.
资源类型: 项目
标识符: http://119.78.100.158/handle/2HF3EXSE/89130
Appears in Collections:全球变化的国际研究计划
科学计划与规划

Files in This Item:

There are no files associated with this item.


Recommended Citation:
Jingyi Chen. INFEWS N/P/H2O: SusChEM: Collaborative: Controlling Spatial Composition of Nonprecious Metal-based Heteronanostructures for Enhanced Electrocatalytic Performance. 2017-01-01.
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Jingyi Chen]'s Articles
百度学术
Similar articles in Baidu Scholar
[Jingyi Chen]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Jingyi Chen]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.