Steering Colloids via Two-Dimensional Diffusiophoresis Using Crossed Gradients in Salt Concentrations
使用盐浓度的交叉梯度通过二维扩散电泳控制胶体
基本信息
- 批准号:EP/V048473/1
- 负责人:
- 金额:$ 25.76万
- 依托单位:
- 依托单位国家:英国
- 项目类别:Research Grant
- 财政年份:2021
- 资助国家:英国
- 起止时间:2021 至 无数据
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
Colloidal particles in liquids are found in many ordinary items, such as foods, paints, inks, cosmetics, and pharmaceuticals. They also are the "building blocks" for complex materials with attractive optical, mechanical or electrical properties. Colloids in liquid are not static, but they are constantly moving in random directions because of Brownian diffusion. In this research, we will investigate ways to move colloids in water in specific desired directions with exquisite control - thereby defying Brownian motion. When colloids have an electric charge they can be steered by an external electric field acting upon them through the mechanism known as electrophoresis. Recently, scientists have discovered that the electric fields created by gradients in salt concentration in water can drive colloid motion. The colloidal particles will move linearly either up or down a gradient in salt concentration, depending on the type of salt and whether the charge on the particles is positive or negative. Our vision in this project is to steer particles on curved paths by putting them in solutions in which there are gradients of two different salts going in directions at right angles to each other. We will use criss-crossed polymeric fibres to release salts into water as a way to devise complex patterns of salt concentrations. According to some recent calculations, it should be possible to use these salt gradients to separate mixtures of particles that differ in their charge. This new concept will allow particles to be sorted in a simple way, and at low-cost and without a need for an external power supply. An immediate application will be in re-using and recycling expensive nanoparticles to minimise their waste. The use of crossed gradients in salt concentration could also provide a way to measure unknown electric charges on particles. When the concept is validated in our experiments, it will provide the basis for a simple diagnostic method to identify and characterise particles, such as viruses or contaminants. Our research will show that crossed salt gradients can overcome Brownian motion to steer sub-micrometer particles on nearly any desired path. Having such precise control of colloid motion will open up possibilities for fabricating complex materials one particle at a time. We will attach some "sticky" molecules onto the colloids so that they will adhere to surfaces after being steered there by electrophoresis. Our fundamental research might thereby lead to breakthroughs in the manufacturing of materials for applications ranging from solar cells and optical devices to delivering drugs in the body.
液体中的胶体颗粒存在于许多普通物品中,如食品,油漆,油墨,化妆品和药品。它们也是具有吸引人的光学、机械或电学特性的复杂材料的“构建块”。液体中的胶体不是静止的,而是由于布朗扩散而不断地沿随机方向运动。在这项研究中,我们将研究如何在精确控制的情况下,使水中的胶体沿特定的方向移动,从而克服布朗运动。 当胶体带有电荷时,它们可以通过被称为电泳的机制被作用在它们上的外部电场操纵。最近,科学家们发现,水中盐浓度梯度产生的电场可以驱动胶体运动。胶体颗粒将线性地向上或向下移动盐浓度梯度,这取决于盐的类型以及颗粒上的电荷是正还是负。我们在这个项目中的愿景是通过将粒子放入溶液中来引导粒子沿着弯曲的路径运动,在溶液中有两种不同的盐的梯度,它们的方向彼此成直角。我们将使用交叉的聚合物纤维将盐释放到水中,以此来设计盐浓度的复杂模式。根据最近的一些计算,应该可以使用这些盐梯度来分离电荷不同的粒子混合物。这一新概念将允许以简单的方式、低成本且无需外部电源对颗粒进行分类。一个直接的应用将是重新使用和回收昂贵的纳米粒子,以尽量减少浪费。在盐浓度中使用交叉梯度也可以提供一种测量粒子上未知电荷的方法。当这个概念在我们的实验中得到验证时,它将为识别和识别颗粒(如病毒或污染物)的简单诊断方法提供基础。 我们的研究将表明,交叉盐梯度可以克服布朗运动,使亚微米颗粒沿着几乎任何期望的路径运动。对胶体运动的精确控制将为一次一个颗粒地制造复杂材料开辟可能性。我们将把一些“粘性”分子附着在胶体上,这样它们在被电泳引导到表面后就能附着在表面上。因此,我们的基础研究可能会导致从太阳能电池和光学设备到体内药物输送等应用材料制造的突破。
项目成果
期刊论文数量(2)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
Quantitative imaging and modeling of colloidal gelation in the coagulant dipping process.
凝固剂浸渍过程中胶体凝胶的定量成像和建模。
- DOI:10.1063/5.0097297
- 发表时间:2022
- 期刊:
- 影响因子:0
- 作者:Williams I
- 通讯作者:Williams I
Colloidal diffusiophoresis in crossed electrolyte gradients: Experimental demonstration of an "action-at-a-distance" effect predicted by the Nernst-Planck equations
- DOI:10.1103/physrevfluids.9.014201
- 发表时间:2024-01-04
- 期刊:
- 影响因子:2.7
- 作者:Williams,Ian;Warren,Patrick B.;Keddie,Joseph L.
- 通讯作者:Keddie,Joseph L.
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