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光学不对称Janus粒子的静电取向

Electrostatic Orientation of Optically Asymmetric Janus Particles.

作者信息

Sadafi Mohammad Mojtaba, da Mota Achiles Fontana, Mosallaei Hossein

机构信息

Metamaterials Laboratory, Electrical and Computer Engineering Department, Northeastern University, Boston, Massachusetts 02115, United States.

Department of Electrical Engineering, University of Brasilia, Brasilia, Federal District 70910-900, Brazil.

出版信息

ACS Omega. 2024 Nov 28;9(50):49172-49187. doi: 10.1021/acsomega.4c05669. eCollection 2024 Dec 17.

Abstract

Janus micro- and nanoparticles, featuring unique dual-interface designs, are at the forefront of rapidly advancing fields such as optics, medicine, and chemistry. Accessible control over the position and orientation of Janus particles within a cluster is crucial for unlocking versatile applications, including targeted drug delivery, self-assembly, micro- and nanomotors, and asymmetric imaging. Nevertheless, precise mechanical manipulation of Janus particles remains a significant practical challenge across these fields. The current predominant methods, based on fluid flow, thermal gradients, or chemical reactions, have their precision and applicability limited by the properties of their background fluids. Therefore, this study proposes electrostatics to deliberately control the local orientation of optically asymmetric Janus particles (spherical and matchstick-like hybrid metal-dielectric objects) within a cluster to overcome the aforementioned restraints. We introduce a sophisticated multiphysics platform and employ it to explore and unveil the infrastructural physics behind the mechanical behavior of the particles when subjected to electrostatic stimuli in an ionic environment. We investigate how different deterministic and stochastic variables affect the particles' short- and long-term responses. By judicious engineering of amplitude, direction, and polarization of the external excitation, we demonstrate that the particles tend to undergo the desired rotational motion and converge to favorable orientations. The functionality of our approach is showcased in the context of an asymmetric imaging system based on optically asymmetric Janus particles. Our findings suggest a viable platform for adequate mechanical manipulation of Janus particles and pave the way for enabling numerous state-of-the-art applications in various fields.

摘要

具有独特双界面设计的Janus微米和纳米颗粒处于光学、医学和化学等快速发展领域的前沿。对Janus颗粒在簇内的位置和取向进行可控操作对于实现包括靶向药物递送、自组装、微纳马达和不对称成像在内的多种应用至关重要。然而,在这些领域中,对Janus颗粒进行精确的机械操作仍然是一个重大的实际挑战。目前主要的方法基于流体流动、热梯度或化学反应,其精度和适用性受到背景流体性质的限制。因此,本研究提出利用静电来刻意控制簇内光学不对称Janus颗粒(球形和火柴棍状混合金属-电介质物体)的局部取向,以克服上述限制。我们引入了一个复杂的多物理平台,并利用它来探索和揭示在离子环境中对颗粒施加静电刺激时其力学行为背后的基础物理学。我们研究了不同的确定性和随机性变量如何影响颗粒的短期和长期响应。通过对外部激励的幅度、方向和极化进行明智的设计,我们证明颗粒倾向于进行所需的旋转运动并收敛到有利的取向。我们的方法的功能在基于光学不对称Janus颗粒的不对称成像系统的背景下得到了展示。我们的研究结果为对Janus颗粒进行充分的机械操作提供了一个可行的平台,并为在各个领域实现众多先进应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbe1/11656250/fbf84f65a758/ao4c05669_0001.jpg

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