Collaborative Research: Bioinspired Catalysts with Earth-Abundant Metals for Reductive Treatment of Waterborne Contaminants
Collaborative Research: Bioinspired Catalysts with Earth-Abundant Metals for Reductive Treatment of Waterborne Contaminants
批准号:
1932908
负责人:
Yin Wang
金额:
$11.0万
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:
2020-06-01 至 2024-05-31
中文摘要
一个由研究人员组成的合作团队将开发一种受大自然启发的新型催化剂。这些“生物启发催化剂”将被设计用于破坏有毒的水性氧阴离子污染物,包括高氯酸盐、硝酸盐和溴酸盐。世界各地的地表水、地下水、自来水和废水中都检测到氧离子。这些化合物对供水构成重大风险,因为它们具有高度流动性,低浓度时有毒。传统的氧阴离子去除技术包括选择性离子交换、反渗透和生物还原。然而,这些方法面临着许多缺点,包括二次废物的处理和低处理效率。催化剂将使用常见的钼(Mo)和钨(W)金属以及新型的碳基和硅基支撑材料。与目前使用的催化剂相比,这将显著提高反应性和稳定性。成功开发有效和廉价的催化剂将减少从水中去除氧离子的相关经济和社会负担。这些催化剂也为环境和能源相关领域的新一代生物灵感Mo/ w基材料的开发带来了希望。其他好处包括通过参与研究机会培训和发展研究生、本科生和高中生,从而提高国家的科技劳动力。本研究的目的是开发一种新型的钼基和钨基生物催化剂,用于水和废水处理。具体的研究目标是:(1)在合理设计的载体材料中引入Mo和W前驱体,达到去除难降解氧阴离子污染物的高反应性;(ii)通过详细的材料表征、不同水基质的动力学研究、反应建模和验证来研究反应机制;(3)建立工程流动反应器,进一步评估新催化剂在实际应用中的性能。生物催化剂使用生物酶中发现的相同金属催化元素和来自氢气的电子在环境条件下进行氧阴离子的还原。这项研究的成功完成将为催化反应器的开发提供新的知识,这些催化反应器可以容纳用于各种水和废水处理场景的新型催化剂。这为功能化碳和二氧化硅材料的可持续水净化设计和应用开辟了新的研究方向。除了这些研究成果之外,该项目还将支持STEM领域的研究生、本科生和高中生的培训和发展。他们参与这个项目将为他们在工业界、学术界或政府机构的职业生涯做好准备。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
A collaborative team of researchers will develop a novel class of catalysts inspired by nature. These “bioinspired catalysts” will be designed for the destruction of toxic waterborne oxyanion pollutants including perchlorate, nitrate, and bromate. Oxyanions are detected worldwide in surface water, groundwater, tapwater, and wastewater. These compounds represent a substantial risk to water supplies because they are highly mobile and toxic at low concentrations. Conventional oxyanion removal technologies include selective ion exchange, reverse osmosis, and biological reduction. However, these approaches face numerous drawbacks including the disposal of secondary waste and low treatment efficiency. The catalysts will use common molybdenum (Mo) and tungsten (W) metals and novel carbon and silica-based support materials in their construction. These wil result in significantly improved reactivity and stability compared to the currently used catalysts. Successful development of effective and inexpensive catalysts will decrease the associated economic and social burdens of removing oxyanions from water. These catalysts also hold promise in the development of a new generation of bioinspired Mo/W-based materials for environmental and energy-related fields. Additional benefits include the training and development of graduate, undergraduate, and high school students through participatory research opportunities, thus improving the Nation’s science and technology workforce.This goal of this research is to develop a novel class of Mo- and W-based bioinspired catalysts for water and wastewater treatment. The specific research objectives are to: (i) introduce Mo and W precursors into rationally designed support materials to achieve high reactivity for the removal of recalcitrant oxyanion pollutants; (ii) investigate reaction mechanisms through detailed material characterization, kinetic studies in variable water matrices, and reaction modeling and validation; and (iii) build engineered flow-through reactors to further evaluate the performance of the new catalysts for practical applications. The bioinspired catalysts use the same metal catalytic elements found in biological enzymes together with electrons from hydrogen gas to carry out the reduction of oxyanions under ambient conditions. Successful completion of this research will generate new knowledge for the development of catalytic reactors that can accommodate novel catalysts for a variety of water and wastewater treatment scenarios. This holds potential to develop new research directions in designing and applying functionalized carbon and silica materials for sustainable water purification. Beyond these research outcomes, the project will support the training and development of graduate, undergraduate, and high school students in STEM fields. Their participation in this project will prepare them for careers in industry, academia, or government agencies.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.
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Collaborative Research: Mitigating antibiotic resistance in drinking water by understanding the impact of corrosion inhibitors and corrosion products
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批准号:2027233
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项目类别:Standard Grant
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资助金额:$20.37万
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财政年份:2020
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负责人:Yin Wang
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依托单位:
国内基金
海外基金
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