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Programmable Microfluidics Enabled by 3D Printed Bionic Janus Porous Matrics for Microfluidic Logic Chips

  • Mingzhu Xie
  • , Ziheng Zhan
  • , Chengqi Zhang
  • , Wanqing Xu
  • , Ce Zhang
  • , Yongping Chen*
  • , Zhichao Dong*
  • , Zhaolong Wang*
  • *Corresponding author for this work
  • Hunan University
  • Beihang University
  • China Aerospace Science and Technology Corporation
  • Southeast University, Nanjing
  • Suzhou University of Science and Technology
  • CAS - Technical Institute of Physics and Chemistry

Research output: Contribution to journalArticlepeer-review

Abstract

Numerous structures have been functionally optimized for directional liquid transport in nature. Inspired by lush trees’ xylem that enable liquid directional transportation from rhizomes to the tip of trees, a new kind of programmable microfluidic porous matrices using projection micro-stereolithography (PµSL) based 3D printing technique is fabricated. Structural matrices with internal superhydrophilicity and external hydrophobicity are assembled for ultra-fast liquid rising enabled by capillary force. Moreover, the unidirectional microfluidic performance of the bionic porous matrices can be theoretically optimized by adjusting its geometric parameters. Most significantly, the successive programmable flow of liquid in a preferred direction inside the bionic porous matrices with tailored wettability is achieved, validating by a precisely printed liquid displayer and a microfluidic logic chip. The programmable and functional microfluidic matrices promise applications of patterned liquid flow, displayer, logic chip, cell screening, gas–liquid separation, and so on.

Original languageEnglish
Article number2300047
JournalSmall
Volume19
Issue number34
DOIs
StatePublished - 23 Aug 2023
Externally publishedYes

Keywords

  • Laplace force
  • PµSL 3D printing
  • bionic porous matrices
  • patterned liquid flow
  • programmable microfluidics

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