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光诱导的被动和主动微颗粒操控。

Light-induced manipulation of passive and active microparticles.

机构信息

Institute of Physics and Astronomy, University of Potsdam, 14476, Potsdam, Germany.

School of Mechanical Engineering, Faculty of Engineering, Tel-Aviv University, 69978, Tel Aviv, Israel.

出版信息

Eur Phys J E Soft Matter. 2021 Apr 8;44(4):50. doi: 10.1140/epje/s10189-021-00032-x.

Abstract

We consider sedimented at a solid wall particles that are immersed in water containing small additives of photosensitive ionic surfactants. It is shown that illumination with an appropriate wavelength, a beam intensity profile, shape and size could lead to a variety of dynamic, both unsteady and steady state, configurations of particles. These dynamic, well-controlled and switchable particle patterns at the wall are due to an emerging diffusio-osmotic flow that takes its origin in the adjacent to the wall electrostatic diffuse layer, where the concentration gradients of surfactant are induced by light. The conventional nonporous particles are passive and can move only with already generated flow. However, porous colloids actively participate themselves in the flow generation mechanism at the wall, which also sets their interactions that can be very long ranged. This light-induced diffusio-osmosis opens novel avenues to manipulate colloidal particles and assemble them to various patterns. We show in particular how to create and split optically the confined regions of particles of tunable size and shape, where well-controlled flow-induced forces on the colloids could result in their crystalline packing, formation of dilute lattices of well-separated particles, and other states.

摘要

我们研究了沉浸在含有小量光敏离子型表面活性剂的水中的固壁附近的沉降颗粒。结果表明,用适当波长、光束强度分布、形状和尺寸照射颗粒,可导致颗粒产生各种动态的、非稳态和稳态的结构。这种在固壁处的动态、可控和可切换的粒子花样是由于一种新兴的扩散渗透流所致,它起源于紧邻固壁的静电扩散层,该处的表面活性剂浓度梯度是由光诱导产生的。传统的非多孔颗粒是被动的,只能随已产生的流运动。然而,多孔胶体主动参与壁处的流动产生机制,这也设定了它们的相互作用,其相互作用可能具有非常长程的范围。这种光诱导的扩散渗透为操纵胶体颗粒并将它们组装成各种花样开辟了新途径。我们特别展示了如何用光来创建和分裂具有可调尺寸和形状的受限区域的颗粒,在这些受限区域中,胶体上的可控的流致力可以导致胶体的结晶排列、稀疏散布颗粒的晶格形成以及其他状态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b94/8032649/ae9dbed88e73/10189_2021_32_Fig1_HTML.jpg

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