通过磁弛豫阐明交变旋转磁场中的排列胶体团簇。

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Aldo Spatafora-Salazar, Dana M Lobmeyer, Lucas H P Cunha, Kedar Joshi, Sibani Lisa Biswal
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引用次数: 0

摘要

在胶体尺度上进行精确控制,是制造具有可调整和精确设计特性的新材料和设备的最有前途的自下而上的方法之一。磁驱动胶体组装具有极大的多功能性,因为它能够从外部调整粒子与粒子之间的相互作用,并构建大量的粒子排列。然而,尽管以前曾努力探索参数空间,但结合二维微结构控制的全局定向控制仍然遥不可及。此外,超顺磁珠的磁弛豫时间虽然是磁响应的一个关键特征,但却在很大程度上被忽视了。在这里,我们利用了超顺磁珠在交变旋转磁场中的磁弛豫时间,并展示了如何利用这一特性促进定向磁簇的形成。这些磁珠的取向可由磁场参数控制。通过实验、模拟和理论,我们探究了这种交变旋转磁场下的双粒子系统(二聚体),并利用其动力学深入了解了形成磁簇的集体反应。我们发现,由于不可忽略的磁弛豫,磁场类型对胶体之间的偶极相互作用有重大影响。此外,我们还发现磁弛豫和交变磁场的竞争时间尺度会产生各向异性的相互作用势能,从而推动集群排列。通过利用磁性系统的磁弛豫时间,我们可以定制新型的粒子间相互作用,从而扩大胶体组装在设计独特材料和设备方面的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aligned colloidal clusters in an alternating rotating magnetic field elucidated by magnetic relaxation.

Precise control at the colloidal scale is one of the most promising bottom-up approaches to fabricating new materials and devices with tunable and precisely engineered properties. Magnetically driven colloidal assembly offers great versatility because of the ability to externally tune particle-particle interactions and to construct a host of particle arrangements. However, despite previous efforts to probe the parameter space, global orientational control in conjunction with two-dimensional microstructural control has remained out of reach. Furthermore, the magnetic relaxation time of superparamagnetic beads has been largely overlooked despite being a key feature of the magnetic response. Here, we take advantage of the magnetic relaxation time of superparamagnetic beads in an alternating rotating magnetic field and show how harnessing this feature facilitates the formation of oriented clusters. The orientation of these clusters can be controlled by field parameters. Using experiments, simulations, and theory, we probe a two-particle system (dimer) under this alternating rotating magnetic field and use its dynamics to provide insights into the collective response that forms clusters. We find that the type of field has significant implications for the dipolar interactions between the colloids because of the nonnegligible magnetic relaxation. Moreover, we find that the competing time scales of the magnetic relaxation and the alternating field generate an anisotropic interaction potential that drives cluster alignment. By exploiting the magnetic relaxation time of magnetic systems, we can tailor new types of interparticle interactions, thereby expanding the capabilities of colloidal assembly in engineering unique materials and devices.

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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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