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Microbubble generation in a co-flow device operated in a new regime.在新运行模式下的对流向流装置中产生的微泡。
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2
Preparation of wafer-level glass cavities by a low-cost chemical foaming process (CFP).通过低成本化学发泡工艺(CFP)制备晶圆级玻璃腔体。
Lab Chip. 2011 Apr 21;11(8):1532-40. doi: 10.1039/c0lc00708k. Epub 2011 Mar 8.
3
Membrane budding.膜泡形成。
Cell. 2010 Dec 10;143(6):875-87. doi: 10.1016/j.cell.2010.11.030.
4
Daughter bubble cascades produced by folding of ruptured thin films.破裂薄膜折叠产生的女儿泡串级。
Nature. 2010 Jun 10;465(7299):759-62. doi: 10.1038/nature09069.
5
Microfluidic fabrication of stable nanoparticle-shelled bubbles.微流控制造稳定的纳米壳泡。
Langmuir. 2010 Feb 16;26(4):2227-30. doi: 10.1021/la904425v.
6
An air-bubble-actuated micropump for on-chip blood transportation.一种用于片上血液输送的气泡驱动微泵。
Lab Chip. 2009 Jun 7;9(11):1524-33. doi: 10.1039/b900139e. Epub 2009 Apr 6.
7
The ESCRT machinery in endosomal sorting of ubiquitylated membrane proteins.内体分选泛素化膜蛋白过程中的内体分选转运复合体(ESCRT)机制
Nature. 2009 Mar 26;458(7237):445-52. doi: 10.1038/nature07961.
8
Preparation of monodisperse biodegradable polymer microparticles using a microfluidic flow-focusing device for controlled drug delivery.使用微流控流动聚焦装置制备单分散可生物降解聚合物微粒用于控释给药。
Small. 2009 Jul;5(13):1575-81. doi: 10.1002/smll.200801855.
9
Generation of multilayered structures for biomedical applications using a novel tri-needle coaxial device and electrohydrodynamic flow.使用新型三针法同轴装置和电流体动力学流动生成用于生物医学应用的多层结构。
J R Soc Interface. 2008 Oct 6;5(27):1255-61. doi: 10.1098/rsif.2008.0247.
10
Interfacial polygonal nanopatterning of stable microbubbles.稳定微泡的界面多边形纳米图案化
Science. 2008 May 30;320(5880):1198-201. doi: 10.1126/science.1154601.

仿生气泡设计用于颗粒生成。

Bioinspired bubble design for particle generation.

机构信息

Department of Mechanical Engineering, University College London, Torrington Place, London WC1E 7JE, UK.

出版信息

J R Soc Interface. 2012 Feb 7;9(67):389-95. doi: 10.1098/rsif.2011.0671. Epub 2011 Nov 23.

DOI:10.1098/rsif.2011.0671
PMID:22112651
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3243400/
Abstract

In this study, we devise a method to generate homogeneous particles from a bubble suspension, with the capability to control loading and the structure of bubbles. Ideally, a process such as this would occur at the interface between daughter bubble formation (instant) and gaseous diffusion (gradual). Interestingly, the budding mechanism in micro-organisms is one that demonstrates features of the desired phenomena (although at a much slower rate), as viruses can eject and evolve structures from their membranes. With these natural concepts, a bubble's surface can also be made to serve as a platform for particle generation, which transfers significant elements from the initial bubble coating to the newly generated structures. Here, we illustrate this by preparing coated bubbles (approx. 150 µm in diameter) using a hydrophobic polymer, which may be comparable to naturally occurring bubble coatings (e.g. organic matter forming part of bubble coatings in the sea), and dye (which can demonstrate entrapment of smaller quantities of a desired moiety) and then observe particle generation (approx. 500 nm). The process, which may be driven by a polymerosome-forming mechanism, also illustrates how additional uniform sub-micrometre-scale structures may form from a bubble's surface, which may have also previously been attributed to gas diffusion. In addition, such methods of particle formation from a bubble structure, the incorporation of chemical or biological media via an in situ process and subsequent release technologies have several areas of interest across the broad scientific community.

摘要

在这项研究中,我们设计了一种从气泡悬浮液中生成均匀颗粒的方法,具有控制负载和气泡结构的能力。理想情况下,这样的过程会发生在子气泡形成(瞬间)和气体扩散(逐渐)之间的界面上。有趣的是,微生物中的出芽机制展示了所需现象的特征(尽管速度要慢得多),因为病毒可以从它们的膜中喷射和演化结构。利用这些自然概念,气泡的表面也可以作为颗粒生成的平台,将初始气泡涂层中的重要元素转移到新生成的结构中。在这里,我们通过使用疏水性聚合物来制备涂层气泡(直径约 150 µm)来说明这一点,这可能与自然存在的气泡涂层(例如海洋中气泡涂层的一部分有机物)和染料(可以证明捕获较小量所需部分)相似,然后观察颗粒生成(约 500nm)。该过程可能由聚合物体形成机制驱动,还说明了如何从气泡表面形成其他均匀的亚微米级结构,这些结构以前可能也归因于气体扩散。此外,通过这种从气泡结构形成颗粒的方法、通过原位过程和随后的释放技术将化学或生物介质掺入,在整个科学界都有几个感兴趣的领域。