Platform Nanoscale Sorbents for Advanced Separation and Recovery of Metals and Metalloids in Water
Platform Nanoscale Sorbents for Advanced Separation and Recovery of Metals and Metalloids in Water
批准号:
1437820
负责人:
John Fortner
金额:
$32.98万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-01 至 2017-08-31
中文摘要
1437820 fortnner平台纳米级吸附剂用于水中金属和类金属的高级分离和回收该项目将通过提供能够实现吸附去除饮用水中金属的新方法的信息而造福社会。该项目的重点是改进对砷、铀和铬这三种污染物的处理,这三种污染物目前在美国和国际上都很受关注。关于磁性氧化铁吸附剂的新信息不仅将使其集成到吸附处理技术中,而且还将有利于与传感、成像和修复相关的其他基于颗粒的环境技术。系统地评估吸附剂再生和残余固体的性质将有助于使用新吸附剂的过程的生命周期评估。该研究计划将通过高中生、本科生和博士生的参与,帮助培养未来的科学技术劳动力。在所有的教育活动中,将利用各种方案来促进代表性不足的少数民族的更多参与。该项目将研究一种潜在的变革性新方法,以制备定制的吸附介质,用于从饮用水中去除金属和类金属。平台方法使用具有高表面积和金属吸附亲和力的工程氧化铁纳米颗粒,可以控制它们在基板支撑上的聚集和沉积。该项目将推进对砷、铀和铬的金属吸附到一套新型工程纳米颗粒的科学理解,以及控制纳米颗粒性质及其与支持介质相互作用的因素。该项目的目标是:(1)开发具有可控尺寸、组成和水稳定性的工程氧化铁纳米颗粒模型库;(2)量化新型吸附剂的吸附亲和力和吸附容量,阐明吸附机理;(3)评价吸附介质在实际处理配置下的性能和再生潜力。pi将通过三项综合任务来实现这些目标。任务1:他们将开发具有一系列表面涂层和颗粒尺寸的氧化铁纳米颗粒库,然后表征颗粒悬浮液的稳定性及其在基底介质上的沉积。任务2是对砷、铬和铀在纳米颗粒上吸附的详细研究,将结合批量吸附实验、吸附金属的光谱表征和吸附的表面络合模拟。任务3将在连续流柱实验中评估底物支撑的吸附材料的性能和再生。研究方法将与他们的大学和社区的教育和推广活动密切联系在一起。
英文摘要
1437820FortnerPlatform Nanoscale Sorbents for Advanced Separation and Recovery of Metals and Metalloids in WaterThis project will benefit society by providing information that can enable a new approach to adsorptive removal of metals in drinking water. The project is focused on improved treatment of three contaminants, arsenic, uranium and chromium, which are of current interest both within the United States and internationally. Newly created information on magnetic iron oxide sorbents will not only enable their integration into sorption treatment technologies, but it will also benefit other particle-based environmental technologies related to sensing, imaging, and remediation. Systematic evaluation of sorbent regeneration and the properties of the residual solids will contribute to the life cycle assessments of processes that use new sorbents. The research plan will help train the future science and technology workforce through the involvement of high school, undergraduate, and Ph.D. students. In all educational activities, programs will be used to promote increased participation of underrepresented minorities.The project will investigate a potentially transformative new approach to preparing tailored sorbent media for removal of metal and metalloids from drinking water. The platform approach uses engineered iron oxide nanoparticles with high surface areas and affinities for metal adsorption that can be controlled with respect to their aggregation and deposition on substrate supports. The project will advance scientific understanding of metal adsorption of arsenic, uranium and chromium to a novel set of engineered nanoparticles and the factors that control the properties of the nanoparticles and their interactions with supporting media. The project objectives are to: (1) develop model libraries of engineered iron oxide nanoparticles with controlled size, composition, and aqueous stabilities; (2) quantify the adsorption affinity and capacity of the new sorbents and elucidate adsorption mechanisms; (3) evaluate the performance and regeneration potential of sorbent media in realistic treatment configurations. The PIs will pursue these objectives through three integrated tasks. Task 1 they will develop a library of iron oxide nanoparticles with a range of surface coatings and particle sizes, and then characterize the stability of particle suspensions and their deposition to substrate media. Task 2 is a detailed investigation of the adsorption of arsenic, chromium, and uranium to the nanoparticles that will combine batch adsorption experiments, spectroscopic characterization of adsorbed metals, and surface complexation modeling of adsorption. Task 3 will evaluate the performance and regeneration of substrate-supported sorbent materials in continuous-flow column experiments. The research approach will be closely linked with education and outreach activities at their university and in their community.
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Conference: 2023 Environmental Nanotechnology GRC and GRS Nanotechnology for a More Sustainable World
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批准号:2329640
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项目类别:Standard Grant
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资助金额:$5.0万
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财政年份:2023
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负责人:John Fortner
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依托单位:
UNS: Collaborative Research: Effects of Nano-Bio Interactions on Nanoparticle Fate and Transport in Porous Media
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批准号:1704326
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项目类别:Standard Grant
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资助金额:$16.0万
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财政年份:2017
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负责人:John Fortner
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依托单位:
CAREER: Development and Application of Crumpled Graphene Oxide-Based Nanocomposites as a Platform Material for Advanced Water Treatment
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批准号:1454656
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项目类别:Standard Grant
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资助金额:$50.0万
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财政年份:2015
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负责人:John Fortner
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依托单位:
MRI: Acquisition of an X-ray/Ultraviolet Photoelectron Spectrometer (XPS/UPS)
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批准号:1337374
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项目类别:Standard Grant
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资助金额:$52.1万
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财政年份:2013
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负责人:John Fortner
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依托单位:
Atmospheric Fullerene Chemistry: Elucidating Oxidative Pathways and Characterization of Corresponding Derivatives
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批准号:1236865
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项目类别:Standard Grant
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资助金额:$30.0万
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财政年份:2012
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负责人:John Fortner
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依托单位:
海外基金