Literature DB >> 26972826

Dynamic Equilibrium Model for a Bulk Nanobubble and a Microbubble Partly Covered with Hydrophobic Material.

Kyuichi Yasui1, Toru Tuziuti1, Wataru Kanematsu1, Kazumi Kato1.   

Abstract

The dynamic equilibrium model for a bulk nanobubble partly covered with hydrophobic material in water is theoretically and numerically studied. The gas diffusion into a bubble near the peripheral edge of the hydrophobic material on the bubble surface balances that out of the bubble from the other part of the uncovered bubble surface. In the present model, gas diffusion in quiescent liquid is assumed and there is no liquid flow. The total changes of energy and entropy are both zero as it is a kind of equilibrium state. The main origin of the dynamic equilibrium state is the gradient of chemical potential of gas near the peripheral edge of the hydrophobic material. It is caused by the permanent attractive potential of a hydrophobic material to gas molecules dissolved in liquid water as there is permanent repulsion of a hydrophobic material against liquid water. Thus, the gas supply will not terminate. It is numerically shown that stable nanobubble could be present when the fraction of surface coverage by hydrophobic material is from about 0.5 to 1. The stable size of a nanobubble changes with the liquid temperature as well as the degree of gas saturation of water. In slightly degassed water, not only a nanobubble but also a microbubble could be stable in mass balance when the fraction of surface coverage for a microbubble is on the order of 10-4 or less. For hydrophilic materials, however, a bubble could not be stable unless the fraction of the surface coverage is exactly 1. It is suggested that in many experiments of bulk nanobubbles there could be aggregates of nanobubbles.

Entities:  

Year:  2016        PMID: 26972826     DOI: 10.1021/acs.langmuir.5b04703

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  8 in total

1.  Filamentous crystal growth in organic liquids and selection of crystal morphology.

Authors:  Takumi Yashima; Marie Tani; Rei Kurita
Journal:  Sci Rep       Date:  2022-06-15       Impact factor: 4.996

2.  Development of quantitative and concise measurement method of oxygen in fine bubble dispersion.

Authors:  Kenta Kakiuchi; Takehiro Miyasaka; Norikazu Harii; Shinji Takeoka
Journal:  PLoS One       Date:  2022-02-16       Impact factor: 3.240

Review 3.  On Some Aspects of Nanobubble-Containing Systems.

Authors:  Kyuichi Yasui
Journal:  Nanomaterials (Basel)       Date:  2022-06-24       Impact factor: 5.719

4.  Coupling Effects of Ionic Surfactants and Electrolytes on the Stability of Bulk Nanobubbles.

Authors:  Xiaotong Ma; Mingbo Li; Xuefei Xu; Chao Sun
Journal:  Nanomaterials (Basel)       Date:  2022-10-02       Impact factor: 5.719

Review 5.  Role of bulk nanobubbles in removing organic pollutants in wastewater treatment.

Authors:  Jiajia Wu; Kejia Zhang; Cheng Cen; Xiaogang Wu; Ruyin Mao; Yingying Zheng
Journal:  AMB Express       Date:  2021-06-28       Impact factor: 3.298

6.  Entrapment and Dissolution of Microbubbles Inside Microwells.

Authors:  Xiaolai Li; Yuliang Wang; Binglin Zeng; Yanshen Li; Huanshu Tan; Harold J W Zandvliet; Xuehua Zhang; Detlef Lohse
Journal:  Langmuir       Date:  2018-08-23       Impact factor: 3.882

7.  Bulk Nanobubbles or Not Nanobubbles: That is the Question.

Authors:  Ananda J Jadhav; Mostafa Barigou
Journal:  Langmuir       Date:  2020-02-10       Impact factor: 3.882

Review 8.  Sonoproduction of nanobiomaterials - A critical review.

Authors:  Sze Shin Low; Maxine Yew; Chang Nong Lim; Wai Siong Chai; Liang Ee Low; Sivakumar Manickam; Beng Ti Tey; Pau Loke Show
Journal:  Ultrason Sonochem       Date:  2021-12-22       Impact factor: 7.491

  8 in total

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