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Patterned-MOF-Functionalized Nanofiltration Membranes for Selective Removal of Selenium and Arsenic from Fracking Wastewater

Patterned-MOF-Functionalized Nanofiltration Membranes for Selective Removal of Selenium and Arsenic from Fracking Wastewater
用于选择性去除水力压裂废水中硒和砷的图案化 MOF 功能化纳滤膜
批准号:
1941700
负责人:
Steven Weinman
金额:
$35.71万
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:
未结题
起止时间:
2020-05-01 至 2025-04-30

项目摘要

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中文摘要
翻译
水力压裂或“水力压裂”岩层释放被困在其中的石油和天然气会产生大量的废水,通常通过将其抽回地下来处理。这一过程有一个不幸的副作用,即增加处置区域的地震活动。清除废水中返回的任何有害成分的能力,使其可以在水力压裂过程中重复使用或用于灌溉等其他目的,将水力压裂对当地社区的有害影响降至最低。有毒重金属,如硒和砷,是在水力压裂废水中发现的有害物质之一。本项目将开发一种利用纳滤(NF)膜去除压裂废水中硒和砷的新方法。纳滤膜是半透性的,这意味着某些小分子或离子(如氯化钠)可以穿过膜,而其他成分则被困在膜后。在处理压裂废水时,纳滤膜易受油污的影响,也就是说,废水中残留的油类污染物会在膜表面聚集,直到水和小分子无法通过。因此,本项目将利用表面图案和抗污染金属有机框架(mof)来防止膜油污染。mof是一类由金属离子和有机连接剂形成的高多孔晶体材料。mof是膜合成中一种有吸引力的改性剂,因为它们可以选择性地从大量流体中捕获溶解的分子和离子。这种分离的有效性源于MOF对分子或离子的亲和力,材料的超高孔隙率,以及调整材料的吸附特性以适应感兴趣的分子的能力。MOF上的工程表面图案有望产生局部混合,这样污物就不太可能粘在膜表面。整个研究工作的目的是通过去除有毒重金属来实现水力压裂废水的可持续处理方案。拟议的研究将由研究生和本科生进行,他们将共同制定研究计划,指导其他学生,并向来自代表性不足群体的当地K-12学生进行STEM外展。此外,水处理和膜设计概念将纳入研究团队的课程,使本科生和研究生了解当前水处理的主题和挑战。该项目旨在通过表面模式和抗污染的金属有机框架来减轻油污染和吸附能力降低,以保持MOF对硒和砷的选择性,同时将其纳入纳滤膜中处理压裂废水。研究人员假设,表面微图案和抗污染氧化石墨烯(GO)修饰的mof将减轻油诱导的膜污染,从而防止薄膜纳米复合膜在采出水中的容量和选择性损失。该方法将检测三种不同尺寸的微模式和两种氧化石墨烯修饰的mof,以调整其防污能力、选择性和渗透性。该项目将对图案尺寸和合成过程如何影响MOF容量、选择性和抗油污性产生基本的了解。该项目将产生新的知识,关于go -装饰MOFs,特别是GO-Cu-和GO-Fe-MOFs,是否比未go -装饰的MOFs提高防污性能。最终,拟议的研究有望通过去除有毒重金属来实现可持续的采出水处理方案。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
Hydraulic fracturing or "fracking" of rock layers to release the oil and gas trapped within produces a substantial amount of wastewater that is typically disposed of by pumping it back underground. This process has the unfortunate side-effect of increasing seismic activity in disposal areas. The ability to remove any hazardous components returned in the wastewater, so that it can be reused in the fracking process or for other purposes such as irrigation, would minimize the detrimental impact of fracking in local communities. Toxic heavy metals, such as selenium and arsenic, are among the hazardous materials found in fracking wastewater. This project will develop a new approach to remove selenium and arsenic from fracking wastewater using nanofiltration (NF) membranes. NF membranes are semi-permeable, meaning certain small molecules or ions (i.e., sodium chloride) pass through the membrane while other components are trapped behind the membrane. NF membranes are susceptible to oil-fouling when treating fracking wastewater, or in other words, oil contaminants remaining in the wastewater collects at the membrane surface until water and small molecules can no longer pass through. Therefore, this project will utilize surface patterns and anti-fouling metal organics frameworks (MOFs) to prevent membrane oil-fouling. MOFs are a class of highly porous crystalline materials formed from metal ions and organic linkers. MOFs are an attractive modifier in membrane synthesis since they can selectively capture dissolved molecules and ions from large volumes of fluid. The effectiveness of this separation arises from the affinity of the MOF for the molecule or ion, the extraordinarily high porosity of the material, and the ability to tune the sorbent properties of the material to the molecule of interest. Engineering surface patterns on the MOF is expected to create localized mixing such that foulant materials are less likely to stick to a membrane surface. The overall research effort aims to enable sustainable treatment schemes for fracking wastewater by removing toxic heavy metals. The proposed research will be carried out by graduate and undergraduate students, who will collaboratively develop research plans, mentor other students, and perform STEM outreach to local K-12 students from underrepresented groups. Additionally, water treatment and membrane design concepts will be incorporated into the research team’s classes to expose undergraduate and graduate students to current topics and challenges in water treatment.This project aims to mitigate oil-fouling and adsorption capacity reduction using surface patterns and anti-fouling metal-organic frameworks to maintain MOF selectivity for selenium and arsenic while incorporated in an NF membrane to treat fracking wastewater. The investigators hypothesize that surface micro-patterning and anti-fouling graphene oxide (GO)-decorated MOFs will mitigate oil-induced membrane fouling, thereby preventing capacity and selectivity loss of thin-film nanocomposite membranes in produced water service. The approach will examine three different sized micro-patterns and two types of GO-decorated MOFs to tailor anti-fouling ability, selectivity, and permeance. The project will yield fundamental understanding of how pattern size and synthesis procedure affect the MOF capacity, selectivity, and oil-fouling resistance. This project will generate new knowledge on whether GO-decorated MOFs, specifically GO-Cu- and GO-Fe-MOFs, improve anti-fouling performance over non-GO-decorated MOFs. Ultimately, the proposed research is expected to enable sustainable produced water treatment schemes through the removal of toxic heavy metals.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.
期刊论文(6)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.memsci.2022.120584
发表时间: 2022-05-01
期刊: JOURNAL OF MEMBRANE SCIENCE
影响因子: 9.5
作者: [Habib, Shahriar, Weinman, Steven T.]
通讯作者: Weinman, Steven T.
DOI: 10.1021/acsaenm.2c00174
发表时间: 2023-01
期刊: ACS Applied Engineering Materials
影响因子: --
作者: [Sweta Modak;Medha Kasula;M. Esfahani]
通讯作者: Sweta Modak;Medha Kasula;M. Esfahani
DOI: 10.1039/d3ew00401e
发表时间: 2023
期刊: Environmental Science: Water Research & Technology
影响因子: --
作者: [Habib, Shahriar, Wilkins, Madison A., Weinman, Steven T.]
通讯作者: Weinman, Steven T.
Nanopatterning Reduces Bacteria Fouling in Ultrafiltration
纳米图案减少超滤中的细菌污染
DOI: 10.1021/acsestwater.2c00256
发表时间: 2022
期刊: ACS ES&T Water
影响因子: --
作者: [Ward, Lauren M., Shah, Rushabh M., Schiffman, Jessica D., Weinman, Steven T.]
通讯作者: Weinman, Steven T.
EFRI E3P: End of Life Plastics as Starting Materials for Filtration and Barrier Applications
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  • 财政年份:
    2021
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