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정훈의

Jeong, Hoon Eui
Multiscale Biomimetics and Manufacturing Lab.
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자기 감응형 유연 동적 내벽 기반 방오 기능성 튜브형 유체 장치 개발

Alternative Title
Development of Biofouling-Resistant Tubular Fluidic Device with Magneto-responsive Undulatory Dynamic Iinner Walls
Author(s)
박성진최건준성민호황인솔선가현이상현강민수장혜진김재일박채빈김소미이동혁정훈의
Issued Date
2021-05-12
URI
https://scholarworks.unist.ac.kr/handle/201301/77443
Citation
한국정밀공학회 2021년도 춘계학술대회
Abstract
Biofouling of tubular fluidic devices limits the stability, accuracy, and long-term uses of lab on-a-chip systems. Healthcare-associated infection by biofilm formations on body-indwelling and extracorporeal tubular medical devices is also a major cause of mortality and morbidity in patients. Although diverse antifouling techniques have been developed to prevent bacterial contamination of fluidic devices based on antimicrobial materials or nanoscale architectures, they still have limitations in biocompatibility, long-term activity, and durability. In this study, a new conceptual tubular fluidic device model that can effectively suppress bacterial contamination based on dynamic surface motions without using bactericidal materials or nanostructures is proposed. The fluidic device is composed of a magnetoresponsive multilayered composite. The composite tube can generate dynamic surface deformation with controlled geometries along its inner wall in response to a remote magnetic field. The magnetic field-derived surface waves induce the generation of vortices near the inner wall surface of the tube, enabling sweeping of bacterial cells from the surface. As a result, the dynamic composite tube could effectively prevent biofilm formation for an extended time of 14 days without surface modification with chemical substances or nanostructures.
Publisher
한국정밀공학회

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