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Publication:
Hierarchical nanostructures as acoustically manipulatable multifunctional agents in dynamic fluid flow

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Item type:Organizational Unit,

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SCHOOL OF MEDICINE
Upper Org Unit

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Co-Authors

Kim, Dong Wook

Wrede, Paul

Estrada, Hector

Yildiz, Erdost

Lazovic, Jelena

Bhargava, Aarushi

Razansky, Daniel

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No

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Abstract

Acoustic waves provide a biocompatible and deep-tissue-penetrating tool suitable for contactless manipulation in in vivo environments. Despite the prevalence of dynamic fluids within the body, previous studies have primarily focused on static fluids, and manipulatable agents in dynamic fluids are limited to gaseous core-shell particles. However, these gas-filled particles face challenges in fast-flow manipulation, complex setups, design versatility, and practical medical imaging, underscoring the need for effective alternatives. In this study, flower-like hierarchical nanostructures (HNS) into microparticles (MPs) are incorporated, and demonstrated that various materials fabricated as HNS-MPs exhibit effective and reproducible acoustic trapping within high-velocity fluid flows. Through simulations, it is validated that the HNS-MPs are drawn to the focal point by acoustic streaming and form a trap through secondary acoustic streaming at the tips of the nanosheets comprising the HNS-MPs. Furthermore, the wide range of materials and modification options for HNS, combined with their high surface area and biocompatibility, enable them to serve as acoustically manipulatable multimodal imaging contrast agents and microrobots. They can perform intravascular multi-trap maneuvering with real-time imaging, purification of wastewater flow, and highly-loaded drug delivery. Given the diverse HNS materials developed to date, this study extends their applications to acoustofluidic and biomedical fields. Flower-like hierarchical nanostructure microparticles can be trapped by focused ultrasound and manipulated within high-velocity dynamic fluid flow. The wide range of design versatility, substantial surface area, and biocompatibility enable such microparticles to function as acoustically manipulatable medical imaging contrast agents and microrobots. image

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Wiley-V C H Verlag GMBH

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Source

ADVANCED MATERIALS

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DOI

10.1002/adma.202404514

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CC BY (Attribution)

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Except where otherwise noted, this item's license is described as CC BY (Attribution)

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