项目编号: | 1511185
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项目名称: | UNS: Non-Optical Detection of Biomolecular Binding Events at Electrical Liquid Interfaces |
作者: | Zachary Gagnon
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承担单位: | Johns Hopkins University
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批准年: | 2014
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开始日期: | 2015-04-01
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结束日期: | 2016-06-30
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资助金额: | USD70000
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资助来源: | US-NSF
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项目类别: | Standard Grant
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国家: | US
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语种: | 英语
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特色学科分类: | Engineering - Chemical, Bioengineering, Environmental, and Transport Systems
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英文关键词: | liquid interface
; biomolecular-binding event
; liquid interfacial position
; biomolecular interaction
; liquid biosensor
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英文摘要: | The requested funding is for instruments that will enable development of medical assays inexpensively and accurately. The approach is new and novel, and has the potential to reduce health care cost.
This is a request for two pieces of instrument and equipment that will augment his on going research funded via CAREER. The PI's CAREER proposal was about developing an electrokinetic portable multiplexed biosensing system that would detect biomolecules at liquid-liquid interfaces. The plan is - to understand how biomolecular interactions influence the electrical response of a liquid interface; to understand how the physical characteristics of the liquid interface determine the biosensing specificity and sensitivity; and, to develop multiplexed biosensing capabilities and validate the liquid biosensors for disease biomarkers in practical samples. The core idea is to examine a biomolecular-binding event as a perturbing source interfacial polarization, which we can then be detect by measuring interfacial position. The requested instrument will enable the PI to quantify liquid interfacial position non-invasively in real-time The Broader Impact of the PI's CAREER is to engage awareness in high school students, and via Science Academy program in Baltimore City Middle schools as well as engage underrepresented students in his research lab. |
资源类型: | 项目
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标识符: | http://119.78.100.158/handle/2HF3EXSE/94972
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Appears in Collections: | 影响、适应和脆弱性 气候减缓与适应
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Recommended Citation: |
Zachary Gagnon. UNS: Non-Optical Detection of Biomolecular Binding Events at Electrical Liquid Interfaces. 2014-01-01.
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