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May 3, 2026Micromachines0 citationsOpen Access

Numerical Investigation of a Mitochondria-Inspired Micromixer for Enhanced Mixing

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MHMuhammad Ali HashmiAPArvydas PalevičiusSUSigita Urbaitė

Key Points

  • The study aims to enhance fluid mixing in microfluidic systems by designing a bioinspired micromixer based on mitochondrial cristae.
  • Developed four micromixer geometries including a conventional T-channel and variants with multiple cristae matrices.
  • Conducted numerical simulations using COMSOL Multiphysics, focusing on laminar flow and transport of diluted species.
  • Tested designs at various Reynolds numbers (Re = 0.1–100) to assess mixing capability.
  • The high cristae density channel achieved a mixing index of 95.85% at Re = 0.1 and 85.84% at Re = 100.
  • Demonstrated that the mitochondria-inspired micromixer maintains efficient mixing performance across a wide range of Reynolds numbers.
  • Analyzed mixing index and concentration profiles showed significant improvement in fluid mixing efficiency.

Abstract

Today, microfluidics has become a revolutionary field of engineering due to its wide range of applications, including lab-on-a-chip devices, microscale biochemical reactors, drug delivery systems, and disease diagnostics. Efficient fluid mixing has been a significant challenge in these systems due to the dominance of laminar flow and low-Reynolds number conditions, where mixing relies primarily on slow molecular diffusion. It is very difficult to achieve rapid mixing and homogeneous mixing within a limited length. In this study, a bioinspired passive micromixer is developed based on the cristae architecture of mitochondria, which is known for maximizing surface area and transport efficiency in biological systems. The micromixer incorporates cristae-like microstructures within a straight microchannel to produce continuous flow deflection, stretching, and folding, thereby promoting chaotic advection without relying on external energy sources. It also includes mitochondrial granules, such as micropillars, within the channel to disrupt streamline flow. Thus, a numerical investigation was conducted to design four different micromixer geometries: conventional T-channel, and T-channels with a single, double and triple matrix of cristae. The analysis was performed in COMSOL Multiphysics, in which “Laminar flow” and “Transport of diluted species” physics were used, and a stationary study was executed. Simulations were conducted at different Reynolds numbers (Re = 0.1–100) to observe the feasibility of the proposed designs. For analysis, the mixing index and concentration profiles at the outlet and along the length were also examined. The results showed that the high cristae density channel performed well, achieving a mixing index of 95.85% at Re = 0.1 and 85.84% at Re = 100, proving that the proposed mitochondria-inspired cristae Mito-mixer delivers efficient mixing over a broad Reynolds-number range while maintaining a compact, length-efficient design.

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Cite This Study

Hashmi et al. (2026) studied this question.

synapsesocial.com/papers/69f6e5618071d4f1bdfc60dehttps://doi.org/10.3390/mi17050525
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