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Recent progress on the development of bioinspired surfaces with high aspect ratio microarray structures: From fabrication to applications. | LitMetric

AI Article Synopsis

  • High aspect ratio microarray structures can enhance functions in areas like microfluidics and biomedicine by changing their shape or material properties in response to external stimuli.
  • Inspired by nature, research on microneedle functional surfaces shows that these structures can switch between hydrophilic and hydrophobic states, enabling tasks like liquid transport and drug delivery.
  • The review covers manufacturing techniques, mechanisms of liquid manipulation, intelligent control strategies, and highlights ongoing challenges and future possibilities in biomimetic surface applications.

Article Abstract

Surfaces with high aspect ratio microarray structures can implement sophisticated assignment in typical fields including microfluidics, sensor, biomedicine, et al. via regulating their deformation or the material properties. Inspired by natural materials and systems, for example sea cockroaches, water spiders, cacti, lotus leaves, rice leaves, and cedar leaves, many researchers have focused on microneedle functional surface studies. When the surface with high aspect ratio microarray structures is stimulated by the external fields, such as optical, electric, thermal, magnetic, the high aspect ratio microarray structures can undergo hydrophilic and hydrophobic switching or shape change, which may be gifted the surfaces with the ability to perform complex task, including directional liquid/air transport, targeted drug delivery, microfluidic chip sensing. In this review, the fabrication principles of various surfaces with high aspect ratio microarray structures are classified and summarized. Mechanisms of liquid manipulation on hydrophilic/hydrophobic surfaces with high aspect ratio microarray structures are clarified based on Wenzel model, Cassie model, Laplace pressure theories and so on. Then the intelligent control strategies have been demonstrated. The applications in microfluidic, drug delivery, patch sensors have been discussed. Finally, current challenges and new insights of future prospects for dynamic manipulation of liquid/air based on biomimetic surface with high aspect ratio microarray structures are also addressed.

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Source
http://dx.doi.org/10.1016/j.jconrel.2024.01.054DOI Listing

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