Polymer Membrane Ion/Gas/Polyion Sensors: New Frontiers
Polymer Membrane Ion/Gas/Polyion Sensors: New Frontiers
批准号:
7568895
负责人:
MARK E MEYERHOFF
金额:
$18.71万
依托单位国家:
美国
项目类别:
财政年份:
1981
资助国家:
美国
项目状态:
已结题
起止时间:
1981-04-01 至 2010-03-31
关键词:
Advanced DevelopmentAlcoholsAminesAnionsBindingBiologicalBiomedical ResearchCationsChemicalsChemistryClinical ChemistryCommunitiesComplexDevelopmentDevice or Instrument DevelopmentDevicesElectrodesEnvironmental MonitoringEnzymesEquilibriumExhibitsFilmFluoride IonFluoridesFutureGasesGoalsHydroxide IonHydroxidesIn SituInjection of therapeutic agentIon-Selective ElectrodesIonophoresIonsKetonesLeadLigandsLigationLocationMeasurementMembraneMetalloporphyrinsMetalsMethodsMolecularMonitorNMR SpectroscopyNanosphereNitritesOpticsPhasePhysiologicalPolymersPorphyrinsPropertyProtonsReactionReaction TimeResearchResearch PersonnelSamplingSchiff BasesSideSiteSolutionsSpectrophotometryStructureSystemTechnologyToxic effectUnited States National Institutes of HealthWorkX-Ray Crystallographybasecarboxylatecatalystcomplex IVdesigndimerdrinking waterfluorophosphatefrontierimprovedinstrumentationmonomernerve agentnerve gasnoveloptical sensorpolyionporphyrin structurepotentiometric titrationpractical applicationpreventprogramsrapid detectionresponsesalensalicylatesalophensensorstoichiometrytool
中文摘要
新型阴离子/气体/聚离子选择性离子色谱的持续开发、研究和分析应用
提出了基于聚合物膜/薄膜的电化学和光学传感器。研究将建立
在最近一段时间的支持中取得了几项令人兴奋的突破,
用于使用金属卟啉和类似物制造阴离子和气体选择性传感器的化学品
金属-配体络合物。在这些进展中,新的
使用Al(III)的光学和电化学传感器对氟离子显示出优异的选择性,
低介电膜中的Ga(III)和Zr(IV)络合物。未来的努力将包括基本的和
应用研究,并将集中在:1)充分了解有机相连接化学的
产生有用的氟化物选择性响应的各种复合物; 2)评估氢氧化物或
这些物质的氟离子桥连二聚体可以在聚合物膜内自发形成,
这种新的二聚体-单体平衡反应能否用于氟化物的光学传感; 3)
研究防止聚合物膜内发生二聚体-单体平衡的各种策略
从而制备具有能斯特氟化物响应的电位测定膜电极,以及4)
展示了这些新的氟化物传感器在城市氟化物检测中的实际应用
饮用沃茨,并与酶或金属离子催化剂一起使用,以监测有毒物质
氟磷酸盐(例如,神经毒气)。此外,研究将继续评估是否
尚未详细研究的金属卟啉和salophen(例如,Co(III)、Mn(III)、Sn(IV)、Tl(III)、Sc(III),
等等)。可以在聚合物薄膜内经历二聚体-单体化学反应。如果是这样,将努力
设计用于给定阴离子的新的和高选择性的基于聚合物膜的光学传感器(例如,亚硝酸盐,
水杨酸盐等),气体(包括CO、NO等)和其它中性物质(例如,醇、胺等)
基于这些物质分配到聚合物膜中并破坏给定金属卟啉的能力
二聚体转化为单体,产生Soret带的Xmax的大位移。预计这一
研究计划将继续为分析界提供广泛的新的和/或
改进的化学传感器以及新的基于传感器的方法,
作为基础生物医学研究以及现代临床化学和环境测试的工具
仪器仪表此外,鉴于氟离子在生理系统中的潜在高毒性,
和简单的测量工具将特别受欢迎。
英文摘要
The continued development, study, and analytical applications of novel anion/gas/polyion selective
polymer membrane/film-based electrochemical and optical sensors are proposed. Research will build
upon several exciting breakthroughs made during the most recent period of support focusing on new
chemistries useful for fabricating anion and gas selective sensors using metalloporphyrins and similar
metal-ligand complexes within thin polymeric films. Among these advances are the development of new
optical and electrochemical sensors that display exceptional selectivity toward fluoride ion using Al(lll),
Ga(lll) and Zr(IV)-complexes in low dielectric films. Future efforts will include both fundamental and
applied studies and will concentrate on: 1) fully understanding the organic phase ligation chemistry of the
various complexes that yield useful fluoride selective responses; 2) assessing whether hydroxide or
fluoride ion bridged dimers of these species can form spontaneously within the polymeric films and
whether this new dimer-monomer equilibrium reaction can be employed for opticalsensing of fluoride; 3)
examining various strategies to prevent dimer-monomer equilibria from occurring within the polymer films
and thereby prepare potentiometric membrane electrodes with Nernstian fluoride response, and 4)
demonstrating practical applications of these new fluoride sensors for detecting fluoride in municipal
drinking waters, and for use in conjunction with enzymes or metal ion catalysts to monitor toxic
fluorophosphates (e.g., nerve gases). In addition, research will continue to assess whether
metalloporphyrins and salophens not yet examined in detail (e.g., Co(lll), Mn(lll), Sn(IV), Tl(lll), Sc(lll),
etc.) can undergo dimer-monomer chemistry within thin polymeric films. If so, efforts will be made to
devise new and highly selective polymer film-based optical sensors for given anions (e.g., nitrite,
salicylate, etc.), gases (including CO, NO, etc.) and other neutral species (e.g., alcohols, amines, etc.)
based on the ability of such species to partition into the polymer films and break given metalloporphyrins
dimers into monomers, yielding a large shift in the Xmax of the Soret band. It is anticipated that this
research program will continue to provide the analytical community with a wide array of new and/or
improved chemical sensors as well as novel sensor-based methods that will have immediate applications
as tools for basic biomedical research and within modern clinical chemistry and environmental test
instrumentation. In addition, given the potential high toxicity of fluoride ion in physiological systems, new
and simple measurement tools for this species would be especially welcome.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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海外基金