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Influence of molecular structure of extractor molecules on liquid-liquid extraction of oxide particles and properties of composites

机译:提取物分子分子结构对复合材料液 - 液提取的影响

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摘要

Interest in particle extraction through liquid-liquid interface (PELLI) technology is motivated by the need to transfer particles directly from the synthesis medium to the device processing medium. This method avoids the difficulty encountered by conventional re-dispersion methods where particles agglomerate during the drying stage. We develop PELLI strategies to transfer MnO2, ZnO and CeO2 particles that are synthesized in aqueous media into 1-butanol using extractors containing phosphonate and carboxylic groups. We demonstrate that, in addition to head-tail (HT) surfactants, molecules containing two hydrophilic end groups (HTH) can also be employed as extractors, a finding that opens new PELLI applications. We demonstrate this new approach using multifunctional HTH molecules as both PELLI extractors, and charged dispersing agents for the electrophoretic deposition (EPD) of particles that are transferred to an EPD processing medium. Using the HTH extractors for PELLI, we fabricate MnO2-based bulk electrodes for electrochemical supercapacitors (ES) that exhibit superior electrochemical performance. These high active mass loading ES electrodes have a capacitance of 5.7 F cm(-2) (157 F g(-1)) and 2.5 F cm(-2)(67 F g(-1)) at 2 and 100 mV s(-1) scan rates, respectively, with low impedance. In another strategy, the use of HTH extractor for particle transfer to screen printing processing medium facilitates the fabrication of efficient thin film SC electrodes. Measurements provide insight into the influence of anchoring groups and extractor molecule structure on the extraction efficiency and electrochemical performance.
机译:通过液体 - 液体界面(PELLI)技术对颗粒提取的兴趣通过需要将颗粒直接从合成介质转移到器件处理介质。该方法避免了常规再分散方法遇到的难度,其中颗粒在干燥阶段期间附聚。我们在使用含有膦酸盐和羧基的提取物中,在将在水性介质中合成的MNO2,ZnO和CeO 2颗粒转移到1-丁醇中的粘土策略。我们证明,除了头尾(HT)表面活性剂外,还可以使用含有两个亲水端基(HTH)的分子作为提取物,该发现为开启新的PELLI应用。我们用多功能Hth分子作为Pelli提取器和用于转移到EPD处理介质转移的颗粒的电泳沉积(EPD)的带电分散剂的新方法。使用Helli的Hth萃取器,我们制造用于电化学超级电容器的MnO2基础电极,其具有卓越的电化学性能。这些高主动质量负荷ES电极的电容为5.7f cm(-2)(157 f g(-1))和2.5 f cm(-2)(67 f g(-1)),在2和100 mv s时(-1)扫描速率,分别具有低阻抗。在另一种策略中,使用HTH提取器用于筛选到丝网印刷处理介质的粒子转移促进了有效的薄膜SC电极的制造。测量提供了洞察锚定组和提取物分子结构对提取效率和电化学性能的影响。

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