4.8 Article

Bioinspired Slippery Cone for Controllable Manipulation of Gas Bubbles in Low-Surface-Tension Environment

期刊

ACS NANO
卷 13, 期 4, 页码 4083-4090

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b08480

关键词

low-surface-tension environment; bioinspired slippery copper cone; gas bubble; Laplace pressure; spontaneous and directional delivery

资金

  1. China Postdoctoral Science Foundation [BX201700020, 2017M620013]
  2. State Key Laboratory of Chemical Engineering [SKL-ChE-16B04]
  3. National Natural Science Foundation [21431009, N2016KA0089]
  4. Natural Science Foundation of Shaanxi Province [N2017KA0130]
  5. 111 Project [B14009]

向作者/读者索取更多资源

Manipulating bubbles in surfactant solutions or oil mediums is of vital importance in daily life and industries concerned with cosmetics, food, fermentation, mineral flotation, etc. However, realizing controllable regulation of a bubble's behavior is quite challenging in a low-surface-tension aqueous environment, which is mainly attributed to the strong affinity of liquid molecules to a solid surface to prevent the efficient interaction of gas bubbles with the solid surface. To address these issues, herein, we have taken inspiration from cactus spines and pitcher plants to develop a slippery copper cone (SCC), which can facilely manipulate gas bubble in surfactant solutions (as low as similar to 29.9 mN/m, 20 degrees C), e.g., directional and continuous transportation of gas bubbles. This intriguing capability mainly originates from the cooperation of the conical morphology engendering a Laplace pressure and the slippery surface with low friction force but high affinity to bubbles. In addition, the SCC also shows an elegant capability of transporting gas bubbles in various organic solvents, such as formamide (57.4 mN/m, 20 degrees C), glycol (46.5 mN/m, 20 degrees C), dibutyl phthalate (37.0 mN/m, 20 degrees C), and dimethylformamide (35.8 mN/m, 20 degrees C). Furthermore, the prepared SCC also demonstrated distinguished feasibility in antibuoyancy bubble delivery, efficient collection of acidic CO2 microbubbles, and the underwater reaction of hydrogen and oxygen, endowing it with promising applications in various complex low-surface-tension environments.

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