Han Xuemei, Lee Hiang Kwee, Lee Yih Hong, Ling Xing Yi
Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University , Singapore 637371, Singapore.
Institute of Materials Research and Engineering , Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis way, Innovis, #08-03, Singapore 138634, Singapore.
J Phys Chem Lett. 2017 Jan 5;8(1):243-249. doi: 10.1021/acs.jpclett.6b02743. Epub 2016 Dec 20.
The ability of an artificial microdroplet to mimic the rotational behaviors of living systems is crucial for dynamic mass transportation but remains challenging to date. Herein, we report dynamic microdroplet rotation using a liquid marble (RLM) and achieve precise control over mass transportation and distribution in a three-dimensional (3D) microdroplet. RLM rotates synchronously with an external magnetic field, creating circular hydrodynamic flow and an outward centrifugal force. Such spin-induced phenomena direct a spiral movement of entrapped molecules and accelerate their diffusion and homogenization in the entire liquid. Moreover, we demonstrate the rotation rate-controlled (between 0 and 1300 rpm) modulation of shell-catalyzed reaction kinetics from 0.13 to 0.62 min. The directed acceleration of reactants toward a catalytically active shell surface is 3-fold faster than conventional stir bar-based convective flow. RLM as an efficient magnetohydrodynamics transducer will be valuable for dynamical control over mass transportation in microdroplet-based chemical, biological, and biomedical studies.
人工微滴模拟生命系统旋转行为的能力对于动态质量传输至关重要,但迄今为止仍具有挑战性。在此,我们报道了使用液体弹珠(RLM)实现动态微滴旋转,并在三维(3D)微滴中实现了对质量传输和分布的精确控制。RLM与外部磁场同步旋转,产生圆形流体动力流和向外的离心力。这种自旋诱导现象引导被困分子进行螺旋运动,并加速它们在整个液体中的扩散和均匀化。此外,我们展示了壳催化反应动力学的旋转速率控制(在0至1300转/分钟之间)调制,从0.13分钟到0.62分钟。反应物向催化活性壳表面的定向加速比传统搅拌棒对流快3倍。RLM作为一种高效的磁流体动力学换能器,对于基于微滴的化学、生物和生物医学研究中的质量传输动态控制将具有重要价值。