Bubble-induced symmetry breaking in droplet impact

Ying Zhou , Wenchang Zhao , Shiyu Wang , Yanhong Li , Shuxian Tang , Yutong Zheng , Pingan Zhu

Droplet ›› 2025, Vol. 4 ›› Issue (3) : e70006

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Droplet ›› 2025, Vol. 4 ›› Issue (3) : e70006 DOI: 10.1002/dro2.70006
RESEARCH ARTICLE

Bubble-induced symmetry breaking in droplet impact

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Abstract

Symmetry typically characterizes the impact of a liquid droplet on a solid surface, where uniform spreading is followed by radial retraction. Breaking this symmetry traditionally relies on engineering surface properties. Here, we introduce an alternative approach to achieve asymmetric droplet impact by incorporating a pair of bubbles into the liquid droplet, resulting in the coexistence of spreading and retraction. The asymmetric dynamics originate from the anisotropic capillary effects that can be adjusted by varying the volume fraction of bubbles and the impact velocity. The early onset of retraction enhances upward liquid momentum, facilitating prompt droplet takeoff and significantly reducing both the contact area (up to 50%) and contact time (up to 60%). This reduction also diminishes heat exchange between the droplet and the surface. Our findings pave the way for applications that capitalize on reduced contact times through droplet engineering, eliminating the need for surface modifications.

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Ying Zhou, Wenchang Zhao, Shiyu Wang, Yanhong Li, Shuxian Tang, Yutong Zheng, Pingan Zhu. Bubble-induced symmetry breaking in droplet impact. Droplet, 2025, 4(3): e70006 DOI:10.1002/dro2.70006

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References

[1]

Yu X, Zhang Y, Hu R, Luo X. Water droplet bouncing dynamics. Nano Energy. 2021; 81:105647.

[2]

Han X, Li J, Tang X, et al. Droplet bouncing: fundamentals, regulations, and applications. Small. 2022; 18:e2200277.

[3]

Yarin AL. Drop impact dynamics: splashing, spreading, receding, bouncing. Ann Rev Fluid Mech. 2006; 38: 159-192.

[4]

Clanet C, BÉGuin C, Richard D, QuÉRÉ D. Maximal deformation of an impacting drop. J Fluid Mech. 2004; 517: 199-208.

[5]

Zhao Z, Li H, Liu Q, et al. Regulating droplet impact symmetry by surface engineering. Droplet. 2023; 2:e52.

[6]

Yada S, Lacis U, van der Wijngaart W, Lundell F, Amberg G, Bagheri S, Droplet impact on asymmetric hydrophobic microstructures. Langmuir. 2022; 38: 7956-7964.

[7]

Regulagadda K, Bakshi S, Das SK. Morphology of drop impact on a superhydrophobic surface with macro-structures. Phys Fluids. 2017; 29:082104.

[8]

Bird JC, Dhiman R, Kwon HM, Varanasi KK. Reducing the contact time of a bouncing drop. Nature. 2013; 503: 385-388.

[9]

Gauthier A, Symon S, Clanet C, Quere D. Water impacting on superhydrophobic macrotextures. Nat Commun. 2015; 6: 8001.

[10]

Zhu P, Chen C, Nandakumar K, Wang L. Nonspecular reflection of droplets. Small. 2021; 17:e2006695.

[11]

Richard D, Clanet C, Quere D. Contact time of a bouncing drop. Nature. 2002; 417: 811.

[12]

Zhang B, Sanjay V, Shi S, et al. Impact Forces of water drops falling on superhydrophobic surfaces. Phys Rev Lett. 2022; 129:104501.

[13]

Qi Y, Yang Z, Chen T, Xi Y, Zhang J. Fabrication of superhydrophobic surface with desirable anti-icing performance based on micro/nano-structures and organosilane groups. Appl Surface Sci. 2020; 501:144165.

[14]

Guo C, Maynes D, Crockett J, Zhao D. Heat transfer to bouncing droplets on superhydrophobic surfaces. Int J Heat Mass Transf. 2019; 137: 857-867.

[15]

Zhang X, Liu X, Wu X, Min J. Impacting-freezing dynamics of a supercooled water droplet on a cold surface: rebound and adhesion. Int J Heat and Mass Transfer. 2020; 158:119997.

[16]

van Dam DB, Le Clerc C. Experimental study of the impact of an ink-jet printed droplet on a solid substrate. Phys Fluids. 2004; 16: 3403-3414.

[17]

Zwicker D. Droplets come to life. Physics. 2023; 16: 45.

[18]

Hu S, Shi Z, Zheng R, et al. Superhydrophobic liquid-solid contact triboelectric nanogenerator as a droplet sensor for biomedical applications. ACS Appl Mater Interfaces. 2020; 12: 40021-40030.

[19]

Lee JM, Huang X, Goh GL, Tran T, Yeong WY. Understanding droplet jetting on varying substrate for biological applications. Int J Bioprinting. 2023; 9: 758.

[20]

Zhu P, Wang Y, Chu H, Wang L. Superhydrophobicity preventing surface contamination as a novel strategy against COVID-19. J Colloid Interface Sci. 2021; 600: 613-619.

[21]

Daniello RJ, Waterhouse NE, Rothstein JP. Drag reduction in turbulent flows over superhydrophobic surfaces. Phys Fluids. 2009; 21:085103.

[22]

Miljkovic N, Preston DJ, Enright R, Wang EN. Jumping-droplet electrostatic energy harvesting. Appl Phys Lett. 2014; 105:013111.

[23]

Li Y, Qin X, Feng Y, et al. A droplet-based electricity generator incorporating Kelvin water dropper with ultrahigh instantaneous power density. Droplet. 2024; 3:e91.

[24]

Biance A-L, Chevy F, Clanet C, Lagubeau G, QuÉRÉ D. On the elasticity of an inertial liquid shock. J Fluid Mech. 2006; 554: 47-66.

[25]

Zhan H, Lu C, Liu C, Wang Z, Lv C, Liu Y. Horizontal motion of a superhydrophobic substrate affects the drop bouncing dynamics. Phys Rev Lett. 2021; 126:234503.

[26]

Liu Y, Moevius L, Xu X, Qian T, Yeomans JM, Wang Z. Pancake bouncing on superhydrophobic surfaces. Nat Phys. 2014; 10: 515-519.

[27]

Song J, Gao M, Zhao C, et al. Large-area fabrication of droplet pancake bouncing surface and control of bouncing state. ACS Nano. 2017; 11: 9259-9267.

[28]

Vasileiou T, Gerber J, Prautzsch J, Schutzius TM, Poulikakos D. Superhydrophobicity enhancement through substrate flexibility. Proc Natl Acad Sci USA. 2016; 113: 13307-13312.

[29]

Weisensee PB, Tian J, Miljkovic N, King WP. Water droplet impact on elastic superhydrophobic surfaces. Sci Rep. 2016; 6:30328.

[30]

Biroun MH, Li J, Tao R, et al. Acoustic waves for active reduction of contact time in droplet impact. Phys Rev Appl. 2020; 14:024029.

[31]

Tao R, Fang W, Wu J, et al. Rotating Surfaces promote the shedding of droplets. Research. 2023; 6: 0023.

[32]

Li Y, Zhao W, Zhou Y, et al. Ultrafast bounce of particle-laden droplets. Nat Commun. 2024; 15: 9943.

[33]

Zang D, Chen Z, Zhang Y, Lin K, Geng X, Binks BP. Effect of particle hydrophobicity on the properties of liquid water marbles. Soft Matter. 2013; 9: 5067.

[34]

Zhou Y, Zhang C, Zhao W, Wang S, Zhu P. Suppression of hollow droplet rebound on super-repellent surfaces. Nat Commun. 2023; 14: 5386.

[35]

Rabbi R, Kiyama A, Allen JS, Truscott T. Droplet lift-off from hydrophobic surfaces from impact with soft-hydrogel spheres. Commun Phys. 2022; 5: 331.

[36]

Lathia R, Modak CD, Sen P. Two modes of contact-time reduction in the impact of particle-coated droplets on superhydrophobic surfaces. Droplet. 2023; 2:e89.

[37]

Liu Y, Zheng Y, Zhou Y, et al. Self-lubricated bouncing of hot droplets. Newton. 2025; 1:100014.

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2025 The Author(s). Droplet published by Jilin University and John Wiley & Sons Australia, Ltd.

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