Controllable high-performance liquid marble micromixer
Nhat‐Khuong Nguyen, Nhat‐Khuong Nguyen, Pradip Singha, Yuchen Dai, Kamalalayam Rajan Sreejith, Du Tuan Tran, Hoang‐Phuong Phan, Nam‐Trung Nguyen, Nam‐Trung Nguyen, Chin Hong Ooi
Abstract
Nhat‐Khuong Nguyen, Nhat‐Khuong Nguyen, Pradip Singha, Yuchen Dai, Kamalalayam Rajan Sreejith, Du Tuan Tran, Hoang‐Phuong Phan, Nam‐Trung Nguyen, Nam‐Trung Nguyen, Chin Hong Ooi
Abstract
A liquid marble is a liquid droplet coated with a shell of microparticles. Liquid marbles have served as a unique microreactor for chemical reactions and cell culture. Mixing is an essential task for liquid marbles as a microreactor. However, the potential of liquid marble-based microreactors is significantly limited due to the lack of effective mixing strategies. Most mixing strategies used manual and contact-based actuation schemes. This paper reports the development of a manipulation scheme that induces fluid motion into a liquid marble, leading to enhanced mixing. By inducing rotation on a horizontal axis, we significantly increased the mixing rate by 27.6 times compared to a non-actuated liquid marble and reduced the reaction time by more than 10 times. The proposed method provides a simple, continuous, precise, and controllable high-performance mixing strategy on a liquid marble platform.
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A liquid marble is a liquid droplet coated with a shell of microparticles. Liquid marbles have served as a unique microreactor for chemical reactions and cell culture. Mixing is an essential task for liquid marbles as a microreactor. However, the potential of liquid marble-based microreactors is significantly limited due to the lack of effective mixing strategies. Most mixing strategies used manual and contact-based actuation schemes. This paper reports the development of a manipulation scheme that induces fluid motion into a liquid marble, leading to enhanced mixing. By inducing rotation on a horizontal axis, we significantly increased the mixing rate by 27.6 times compared to a non-actuated liquid marble and reduced the reaction time by more than 10 times. The proposed method provides a simple, continuous, precise, and controllable high-performance mixing strategy on a liquid marble platform.
Key concepts: Micromixer, Materials science, Liquid liquid, Microfluidics, Nanotechnology, Chemistry, Chromatography