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Properties and phase equilibria of fluid mixtures as the basis for developing green chemical processes

机译:流体混合物的性质和相平衡作为开发绿色化学过程的基础

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The properties and phase equilibria of fluid mixtures can have great influence on chemical product formation and process development. In this work, examples are presented that illustrate the reaction and separation characteristics of high temperature water, supercritical carbon dioxide, and ionic liquids based on real-time images made with diamond anvil cells or visual cells. In the formation of ferrosilite from quartz (SiO2) and fayalite (Fe2SiO4), the diffusion of SiO2 to the solid fayalite substrate requires less than seconds to occur in water at high temperatures due to the enhanced solubility of SiO2, which has great technological significance for developing processes for industrially important luminescent materials. It is proposed that luminescent materials based on the zinc silicate (Zn2SiO4) family can be made with low environmental burden. The enhanced solubility of natural products in water at high temperatures allows for the fractionation of biomass to produce fermentable feedstocks and chemical products as well as for the efficient separation of natural products. The volumetric properties of n-alkylphenolics with CO2 can allow for efficient separation from their solid matrix due to viscosity reduction and foaming induced by changes in pressure. The lack of solubility of ionic liquids in supercritical CO2 allows for biphasic systems that can be used to efficiently separate phenolic compounds. Equations of state can provide suitable correlation. The viscosity reduction provided by solvents such as water, supercritical carbon dioxide, or organic liquids on ionic liquids allows ionic liquids to be put into a metastable state so that chemical conversions can occur in ionic liquids below their melting point at room temperature. The physical properties and phase behavior of water and carbon dioxide and mixtures with target compounds are very important for developing new green chemical processes.
机译:流体混合物的性质和相平衡可对化学产品的形成和工艺发展产生重大影响。在这项工作中,提供了一些示例,这些示例基于使用金刚石砧座细胞或视觉细胞制作的实时图像来说明高温水,超临界二氧化碳和离子液体的反应和分离特性。在由石英(SiO2)和铁橄榄石(Fe2SiO4)形成硅铁矿的过程中,由于SiO2的溶解度提高,SiO2扩散到固体铁橄榄石基质中在高温下仅需不到几秒钟的时间就可以在水中发生。开发工业上重要的发光材料的方法。提出可以以低环境负担来制造基于硅酸锌(Zn 2 SiO 4)族的发光材料。天然产物在高温下在水中的溶解度提高,可以分馏生物质以生产可发酵的原料和化学产品,以及有效分离天然产物。由于压力降低引起的粘度降低和起泡作用,正烷基酚类化合物与CO2的体积特性可使其与固体基质有效分离。离子液体在超临界CO2中的溶解度不足,使得双相体系可用于有效分离酚类化合物。状态方程可以提供适当的相关性。由诸如水,超临界二氧化碳或离子液体上的有机液体之类的溶剂提供的粘度降低使离子液体处于亚稳态,因此在室温下低于其熔点的离子液体中会发生化学转化。水和二氧化碳以及与目标化合物的混合物的物理性质和相行为对于开发新的绿色化学过程非常重要。

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