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Crystallo-Chemical Approach to Gas Selectivity of Metal Oxides

Crystallo-Chemical Approach to Gas Selectivity of Metal Oxides
金属氧化物气体选择性的晶体化学方法
批准号:
1724455
负责人:
Pelagia Gouma
金额:
$6.07万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-26 至 2018-04-30

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中文摘要
翻译
非技术描述:基于金属氧化物的气体传感今天已经超越了污染控制和环境监测,并延伸到健康监测应用和非侵入性诊断。因此,需要更广泛的理解范围来合成和使用金属氧化物来检测痕量浓度的特定化学物质,而不受复杂混合物中其他化合物的干扰。在这个项目中,氧化物的结构(而不是成分)与其检测特定蒸汽的能力相关,无论是呼吸中的疾病标志物还是环境中的有害污染物。正在进行的实验包括纳米级陶瓷相的新合成,以及气体-氧化物相互作用的原子水平表征。如何生产具有高特异性的化学蒸汽感兴趣的定制陶瓷纳米结构的基本知识是寻求。该项目培训科学家使用先进的材料加工和表征技术,并向公众宣传陶瓷研究对人类健康和福利的好处。技术细节:自1968年以来,半导体金属氧化物已被商业上用作电阻式气体传感器,但气体-氧化物相互作用的性质仍然未知。这些固有的多晶陶瓷存在于各种不同的晶体结构中,每一种都表现为不同的材料。它们的物理和化学性质都不同,尽管它们的组成完全相同。纳米级的陶瓷加工使室温下大量的“亚稳相”成为可能。为了阐明如何实现气体选择性,需要研究基于化学计量和相分布可控的纳米结构二元金属氧化物的传感元件。潜在的假设是,相分布,而不是氧化物组成,决定气敏性能。因此,本研究通过共混静电纺丝、软化学路线和快速凝固工艺,合成了用于传感常用氧化物(MoO3、WO3、TiO2)的可控纳米结构、稳定相和亚稳相的单晶纳米线和纳米粉末;然后对气体-氧化物相互作用进行详细的表征研究,包括在电子显微镜下的原位气体传感实验。与给定气体接触的氧化物表面发生的物理化学变化(例如,氧化,还原,铁电极化)将对选定的一组氧化物晶体(金红石,钙钛矿等)和相应的一组化学品(如胺和烷烃)进行评估。该项目的预期结果是建立具有固有选择性的下一代气体传感系统的气体氧化物多晶选择库,用于健康监测作为非侵入性诊断。
英文摘要
NON-TECHNICAL DESCRIPTION: Metal oxide-based gas sensing today goes beyond pollution control and environmental monitoring and reaches out to health monitoring applications and non-invasive diagnostics. Therefore, a broader scope of understanding is needed to synthesize and use metal oxides for detecting a specific chemical at trace concentrations with no interference from other compounds in a complex mixture. Within this project, the structure (rather than the composition) of an oxide is being correlated to its ability to detect a specific vapor of interest, whether it is a disease marker in breath or a harmful pollutant in the environment. The experiments being undertaken include novel synthesis of ceramic phases at the nanoscale, and atomic level characterization of gas-oxide interactions. Fundamental knowledge about how to produce tailored ceramic nanostructures with high specificity to the chemical vapors of interest is sought. This project is training scientists to use advanced materials processing and characterization techniques, and is educating the public at large about the benefits of ceramics research to human health and welfare. TECHNICAL DETAILS: While semiconducting metal oxides have been used as resistive gas sensors commercially since 1968, the nature of gas-oxide interactions still remains unknown. These inherently polymorphic ceramics exist in various distinct crystallographic configurations, each behaving as a different material with respect to it?s physical and chemical properties, even though they all have the exact same composition. Nanoscale processing of ceramics has made available a "toolbox" of "metastable phases" at room temperature in high quantities. Sensing elements based on nanostructured binary metal oxides of controlled stoichiometry and phase distribution need to be studied in order to elucidate how gas selectivity is achieved. The underlying hypothesis is that phase distribution, rather than oxide composition, determines the gas sensing properties. Therefore, this study is synthesizing such controlled nanostructures, single crystal nanowires and nanopowders of both stable and metastable phases for common oxides used in sensing (MoO3, WO3, TiO2) by means of blend electrospinning, soft chemistry routes, and a rapid solidification process; and then carrying out detailed characterization studies on gas-oxide interactions, including in situ gas sensing experiments in an electron microscope. The physico-chemical changes occurring on the oxide surfaces in contact with a given gas (e.g., oxidation, reduction, ferroelectric poling) will be assessed for a selected group of oxide crystals (rutile, perovskite, etc.) and a respective set of classes of chemicals (such as amines and alkanes). The expected outcome from this project is a gas-oxide polymorph selection library for building the next generation of gas-sensing systems with inherent selectivity, to be used in health monitoring as non-invasive diagnostics.
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