Versatile magnetic hydrogel soft capsule microrobots for targeted delivery
Универсальные мягкие капсульные микророботы на основе магнитного гидрогеля для адресной доставки
2023-04-25
SCID: 54.1/rbw3ehwz
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magnetic hydrogel microrobotson-demand cargo releaserotating magnetic fieldssoft capsule microrobotstargeted cargo delivery
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Abstract (AI)
Maintaining the completeness of cargo and achieving on-demand cargo release during long navigations in complex environments of the internal human body is crucial. Herein, we report a novel design of magnetic hydrogel soft capsule microrobots, which can be physically disintegrated to release microrobot swarms and diverse cargoes with almost no loss. CaCl 2 solution and magnetic powders are utilized to produce suspension droplets, which are put into sodium alginate solution to generate magnetic hydrogel membranes for enclosing microrobot swarms and cargos. Low-density rotating magnetic fields drive the microrobots. Strong gradient magnetic fields break the mechanical structure of the hydrogel shell to implement on-demand release. Under the guidance of ultrasound imaging, the microrobot is remotely controlled in acidic or alkaline environments, similar to those in the human digestion system. The proposed capsule microrobots provide a promising solution for targeted cargo delivery in the internal human body.
Key Findings
1
A magnetic hydrogel soft capsule microrobot was developed to preserve microrobot swarms and diverse cargoes during navigation, with almost no cargo loss.
2
Low-density rotating magnetic fields enable microrobot propulsion, while strong gradient magnetic fields mechanically disintegrate the hydrogel shell for on-demand release.
3
Physical capsule disintegration releases microrobot swarms and cargoes, offering a strategy for targeted delivery inside the human body.
4
Suspension droplets containing CaCl₂ solution and magnetic powders generate sodium-alginate hydrogel membranes that enclose swarms and cargoes.
5
The capsule can be remotely controlled under ultrasound imaging in acidic and alkaline environments simulating conditions of the human digestive system.
Research Object
magnetic hydrogel soft capsule microrobots enclosing microrobot swarms and diverse cargoes for targeted delivery in the internal human body
Research Subject
cargo preservation and on-demand release through remotely controlled navigation and physical disintegration of the hydrogel shell in complex, acidic or alkaline environments
Publication Details
Publication Date
2023-04-25
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