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Designing the next generation of highly selective sorbent materials for remediation of target inorganic contaminants in aqueous systems

Designing the next generation of highly selective sorbent materials for remediation of target inorganic contaminants in aqueous systems
设计下一代高选择性吸附剂材料,用于修复水系统中的目标无机污染物
批准号:
10112929
负责人:
Julie Zimmerman
金额:
$15.38万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-02-21 至 2025-01-31

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中文摘要
翻译
项目总结/摘要 有效去除饮用水中的金属污染物对保护人类健康至关重要 健康然而,这一过程受到了自然共存的,否则对健康有益的 离子。这些离子在普通处理过程中竞争表面吸附位点,例如吸附剂, 旨在去除目标金属污染物。此外,这些竞争对手经常出现在可比或 更高的浓度,表现出类似的化学结构,并表现出类似或上级的亲和力, 吸附位点常规的吸附剂技术是自上而下的,其中产生表面吸附位点 使用或模仿天然材料的。然而,聚合物和纳米科学的最新进展允许 前所未有的自下而上的能力,以精确地建模、表征和可控地合成 吸附剂在这里,我们将利用化学行为的差异,如极性,电荷分布,大小, 目标含氧阴离子金属污染物和天然存在的竞争离子之间的疏水性, 高选择性和可调的聚合物和纳米表面。结合开发含氧阴离子质量 处理过程中的运输模型,这些新的自下而上的设计策略将被应用于开发 与目前的商业自上而下设计的吸收剂相比, 吸附剂。我们将通过迭代合成、建模和缩放来实现我们创新的自底向上方法 来自两个平台的高选择性吸附剂,提供多种规模和不同饮用水的解决方案 系统条件(例如,个人家庭水龙头的使用点(POU)与社区入口点(POE)- 规模应用):1)利用具有各种过渡金属交联剂(TMC)的生物聚合物作为进入点 (POE)应用和2)控制纳米金属氧化物的尺寸、表面积、形态和结晶度 本发明涉及用于一次性POU应用的集成到多孔电纺聚合物纤维中的纳米氧化物(NMO)。在(1)中, 所得交联络合物可以静电地和/或空间地排除竞争离子。(2)、 某些高能晶面的存在和末端表面基团的配位产生表面 化学,其有利于特定目标污染物的吸附,使得不同目标污染物的共混物 纤维内的NMO可用于靶向特定的金属混合物。我们的初步结果表明, 这两个系统的潜力,以实现超基金相关金属的选择性,不能通过电流实现 吸附剂。因此,我们建议彻底改变从超级基金中去除混合金属污染物的方法 现场饮用水通过过程,可以同时减少运营成本,危险废物 在改善公共卫生保护的同时,还应加强对发电和饮用水合规违规行为的控制。
英文摘要
PROJECT SUMMARY/ ABSTRACT The effective removal of metal contaminants from drinking water at Superfund sites is critical to protect human health. However, this process is challenged by the presence of naturally co-occurring, otherwise health-benign ions. Such ions compete for surface adsorption sites in common treatment processes, such as adsorbents, intended to remove the target metal pollutants. Further, these competitors frequently occur at comparable or higher concentrations, exhibit analogous chemical structures, and demonstrate similar or superior affinities for sorption sites. Conventional adsorbent technologies are top-down, wherein surface adsorption sites are created using or mimicking natural materials. Yet, recent advances in polymer- and nano-science allow for unprecedented bottom-up capabilities to thermodynamically model, characterize, and controllably synthesize adsorbents. Here, we will exploit chemical behavioral differences such as polarity, charge distribution, size, and hydrophobicity between target oxoanion metal pollutants and naturally occurring competing ions to generate highly selective and tunable polymeric and nano-surfaces. In conjunction with developing oxoanion mass transport models within treatment processes, these new bottom-up design strategies will be applied to develop macro-scale sorbents with improved efficiency and effectiveness over current commercial top-down designed sorbents. We will realize our innovative bottom-up approach by iteratively synthesizing, modeling, and scaling highly selective sorbents from two platforms offering solutions at multiple scales and under varying drinking water system conditions (e.g., point-of-use (POU) at individuals household tap vs. point-of-entry (POE) community- scale applications): 1) utilize biopolymers with various transition metals crosslinkers (TMC) for point of entry (POE) applications and 2) controlling size, surface area, morphology, and crystallinity of nano-metal oxides (NMOs) that are integrated into porous electrospun polymer fibers for single-use POU applications. In (1), resultant crosslinking complexes can exclude competitive ions electrostatically and/or sterically. In (2), the presence of certain high-energy crystal facets and the coordination of terminal surface groups create surface chemistry that is favorable toward the sorption of specific target contaminants such that a blend of different NMOs within a fiber could be used to target specific mixtures of metals. Our preliminary results demonstrate the potential of both systems to realize selectivity of Superfund-relevant metals that cannot be achieved by current sorbents. Thus, we propose to revolutionize the approach to removing mixed metal pollutants from Superfund site drinking water through processes that can simultaneously reduce operational costs, hazardous waste generation, and drinking water compliance violations while improving the protection of public health.
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Designing the next generation of highly selective sorbent materials for remediation of target inorganic contaminants in aqueous systems
  • 批准号:
    10332732
  • 项目类别:
  • 资助金额:
    $17.61万
  • 财政年份:
    2020
  • 负责人:
    Julie Zimmerman
  • 依托单位:
Designing the next generation of highly selective sorbent materials for remediation of target inorganic contaminants in aqueous systems
  • 批准号:
    10559492
  • 项目类别:
  • 资助金额:
    $15.61万
  • 财政年份:
    2020
  • 负责人:
    Julie Zimmerman
  • 依托单位:
海外基金