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Charging Organic Liquids by Static Charge

机译:通过静电充电充电有机液体

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摘要

Aqueous liquids can be charged effectively by a number of methods for many important applications. Organic liquids, however, cannot be charged effectively by existing methods due to their low conductivities, especially the insulating nonpolar organic liquids; hence, there has not been any significant application developed based on charged organic liquids. This study describes an effective fundamental strategy for charging organic liquids, including nonpolar organic liquids: static charge is simply mixed into the liquid. Analyses suggested that the charged species are molecular ions that reside in the bulk of the liquid after charging. This method is simple and general, and the amount and polarity of charge can be flexibly tunable. The effectiveness of this method gives rise to opportunities for the development of novel applications. Charged organic droplets are manipulated for the first time by an electric field for controlling organic reactions. Particles with charge embedded in their bulk matrices are fabricated for the first time (i.e., via polymerizing the liquid monomers mixed with static charge). The charge in this novel class of bulk-charged particles is stable and permanent, especially when compared to the typical surface-charged particles. Simultaneous bulk-charged and bulk-magnetic particles are fabricated for the first time via simply mixing both the static charge and magnetic nanoparticles into the liquid monomers. These highly versatile particles are responsive to both electric and magnetic fields for practical applications.
机译:通过许多重要应用的方法可以有效地充电水性液体。然而,由于它们的低导体,特别是由于其低导电性,特别是绝缘的非极性有机液体,可以有效地充电。因此,基于带电的有机液体开发的任何重要应用。本研究描述了用于充电有机液体的有效基本策略,包括非极性有机液体:静电电荷简单地混合到液体中。分析表明,带电物种是在充电后在大部分液体中的分子离子。该方法简单且一般,电荷量和极性可以灵活调谐。这种方法的有效性引起了新应用的发展的机会。通过用于控制有机反应的电场首次操纵带电的有机液滴。第一次制造嵌入其中堆积基质中的电荷的颗粒(即,通过将混合的静电电荷混合的液体单体聚合)制造。这种新颖的散装颗粒中的电荷稳定和永久,特别是与典型的表面带电粒子相比。通过简单地将静电电荷和磁性纳米颗粒混合到液体单体中,首次制造同时批量电荷和散装磁性颗粒。这些高通用的颗粒对实际应用的电场和磁场响应。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第50期|21004-21016|共13页
  • 作者单位

    Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Singapore;

    Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Singapore;

    Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Singapore;

    Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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