Wang Yao, Zhou Limin, Wang Chunlei, Wen Binghai, Hu Jun, Zhang Lijuan
Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Langmuir. 2025 May 6;41(17):10965-10970. doi: 10.1021/acs.langmuir.5c00188. Epub 2025 Apr 28.
The existence of bulk nanobubbles (BNBs) has long been questioned, primarily due to the limitations of experimental techniques and the widespread assumption that spherical bubbles cannot achieve a stable equilibrium. In this study, we develop a model that describes the stability of BNBs based on experimental observations, revealing that the intensity of thermal capillary waves, which affect BNB through localized thermal fluctuations inducing deformations and altering pressure distribution, significantly influences the stability of these BNBs in different saturated environments. Our computational results corroborate three frequently reported but controversial characteristics of BNBs: their typical size distribution ranges from 100 to 200 nm around = 107 nm with = 10,000; they maintain stability in undersaturated conditions; and their size distributions show minimal fluctuations across different saturation levels. Our results provide a possible mechanism for understanding BNB stability and align well with experimental observations, thereby significantly enhancing the potential for their application in the field of soft matter science.
大量纳米气泡(BNBs)的存在长期以来一直受到质疑,主要是由于实验技术的局限性以及普遍认为球形气泡无法实现稳定平衡的假设。在本研究中,我们基于实验观察结果开发了一个描述BNBs稳定性的模型,揭示了热毛细波的强度通过局部热涨落引起变形并改变压力分布从而影响BNBs,这在不同饱和环境中对这些BNBs的稳定性有显著影响。我们的计算结果证实了BNBs三个经常被报道但存在争议的特征:它们的典型尺寸分布在 = 107 nm左右,范围从100到200 nm, = 10,000;它们在欠饱和条件下保持稳定;并且它们的尺寸分布在不同饱和水平下波动最小。我们的结果为理解BNBs稳定性提供了一种可能的机制,与实验观察结果吻合良好,从而显著提高了它们在软物质科学领域的应用潜力。