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Correction: Microfluidic flow control on charged phospholipid polymer interface.

Yan Xu1, Madoka Takai1, Tomohiro Konno1

  • 1Department of Materials Engineering, School of Engineering and Center for NanoBio Integration, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan. takai@mpc.t.u-tokyo.ac.jp.

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Summary

This correction clarifies microfluidic flow control on charged phospholipid polymer interfaces. It ensures accurate understanding of fluid dynamics in microscale devices.

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Area of Science:

  • Biomaterials Science
  • Surface Chemistry
  • Fluid Dynamics

Context:

  • Microfluidic devices rely on precise fluid control.
  • Charged phospholipid polymers offer unique surface properties for manipulation.
  • Previous work established a foundation for flow control in these systems.

Purpose:

  • To correct and refine the understanding of microfluidic flow control mechanisms.
  • To address specific details regarding the interaction between fluids and charged polymer surfaces.
  • To ensure the accuracy of published findings on this topic.

Summary:

  • This entry is a correction to a previously published article.
  • It addresses specific technical details related to the experimental setup and results.
  • The correction pertains to the microfluidic flow control on charged phospholipid polymer interfaces.

Impact:

  • Ensures the integrity and accuracy of scientific literature.
  • Provides a more precise understanding for researchers in microfluidics and biomaterials.
  • Facilitates reliable development of microfluidic applications using phospholipid polymers.