| [1] | Gu, H. et al. Leidenfrost effect on engineered surfaces. Advanced Functional Materials 36, 2423686 (2026). doi: 10.1002/adfm.202423686 |
| [2] | Stewart, S. M. Leidenfrost drop dynamics: a forgotten past and modern day rediscoveries. European Journal of Physics 43, 023001 (2022). doi: 10.1088/1361-6404/ac3fed |
| [3] | Wang, G. Q. et al. From thermal energy to kinetic energy: droplet motion triggered by the Leidenfrost effect. Advanced Materials Interfaces 8, 2001249 (2021). doi: 10.1002/admi.202001249 |
| [4] | Quéré, D. Leidenfrost dynamics. Annual Review of Fluid Mechanics 45, 197-215 (2013). doi: 10.1146/annurev-fluid-011212-140709 |
| [5] | Biance, A. L., Clanet, C. & Quéré, D. Leidenfrost drops. Physics of Fluids 15, 1632-1637 (2003). doi: 10.1063/1.1572161 |
| [6] | Jiang, M. N. et al. Inhibiting the Leidenfrost effect above 1, 000 °C for sustained thermal cooling. Nature 601, 568-572 (2022). doi: 10.1038/s41586-021-04307-3 |
| [7] | Guo, Y. H. et al. Delayed Leidenfrost effect of a cutting droplet on a microgrooved tool surface. Langmuir 39, 9648-9659 (2023). doi: 10.1021/acs.langmuir.3c00592 |
| [8] | Hai, A. et al. High-temperature wettable water-based lubricants toward hot rolling lubrication. Advanced Functional Materials 34, 2316793 (2024). |
| [9] | Bouillant, A. et al. Leidenfrost wheels. Nature Physics 14, 1188-1192 (2018). doi: 10.1038/s41567-018-0275-9 |
| [10] | Soto, D. et al. Air-levitated platelets: from take off to motion. Journal of Fluid Mechanics 814, 535-546 (2017). doi: 10.1017/jfm.2017.27 |
| [11] | Yang, J. L. et al. A standing Leidenfrost drop with Sufi whirling. Proceedings of the National Academy of Sciences of the United States of America 120, e2305567120 (2023). doi: 10.1073/pnas.2305567120 |
| [12] | Bain, R. M. et al. Accelerated chemical reactions and organic synthesis in Leidenfrost droplets. Angewandte Chemie International Edition 55, 10478-10482 (2016). doi: 10.1002/anie.201605899 |
| [13] | Song, J. et al. Partial Leidenfrost evaporation-assisted ultrasensitive surface-enhanced Raman spectroscopy in a Janus water droplet on hierarchical plasmonic micro-/nanostructures. ACS Nano 14, 9521-9531 (2020). doi: 10.1021/acsnano.0c04239 |
| [14] | Liu, M. J. et al. Leidenfrost effect-induced chaotic vortex flow for efficient mixing of highly viscous droplets. Advanced Materials 36, 2409192 (2024). doi: 10.1002/adma.202409192 |
| [15] | Vakarelski, I. U. et al. Stabilization of Leidenfrost vapour layer by textured superhydrophobic surfaces. Nature 489, 274-277 (2012). doi: 10.1038/nature11418 |
| [16] | Wells, G. G. et al. A sublimation heat engine. Nature Communications 6, 6390 (2015). doi: 10.1038/ncomms7390 |
| [17] | Liu, Y. et al. Femtosecond laser-produced heterogeneous wettability surfaces for turning Leidenfrost drop spinning. Applied Physics Letters 125, 071602 (2024). doi: 10.1063/5.0221013 |
| [18] | Guo, Y. H. et al. Suppressed Leidenfrost effect on the rough tool surface with negative skewness for high-efficiency evaporation cooling. Applied Thermal Engineering 242, 122445 (2024). doi: 10.1016/j.applthermaleng.2024.122445 |
| [19] | Guo, Y. H. et al. Singular ratchet-valley structure inducing droplet directional transport crossing all boiling states. International Journal of Heat and Mass Transfer 245, 127005 (2025). doi: 10.1016/j.ijheatmasstransfer.2025.127005 |
| [20] | Jiao, Y. L. et al. Achieving the bidirectional transportation of boiling droplets on the functional ratchet-valley array. Langmuir 41, 25315-25325 (2025). doi: 10.1021/acs.langmuir.5c02703 |
| [21] | Linke, H. et al. Self-propelled Leidenfrost droplets. Physical Review Letters 96, 154502 (2006). doi: 10.1103/PhysRevLett.96.154502 |
| [22] | Lagubeau, G. et al. Leidenfrost on a ratchet. Nature Physics 7, 395-398 (2011). doi: 10.1038/nphys1925 |
| [23] | Liu, C. C. et al. Directional drop transport achieved on high-temperature anisotropic wetting surfaces. Advanced Materials 26, 6086-6091 (2014). doi: 10.1002/adma.201401985 |
| [24] | Li, J. et al. Rectification of mobile Leidenfrost droplets by planar ratchets. Small 16, 1901751 (2020). doi: 10.1002/smll.201901751 |
| [25] | Soto, D. et al. Surfing on a herringbone. Physics Review Fluids 1, 013902 (2016). doi: 10.1103/PhysRevFluids.1.013902 |
| [26] | Li, A. et al. Tailoring vapor film beneath a Leidenfrost drop. Nature Communications 14, 2646 (2023). doi: 10.1038/s41467-023-38366-z |
| [27] | Kruse, C. et al. Self‑propelled droplets on heated surfaces with angled self‑assembled micro/nanostructures. Microfluidics and Nanofluidics 18, 1417-1424 (2015). |
| [28] | Li, B. H. et al. Self-propelled Leidenfrost droplets on femtosecond-laser-induced surface with periodic hydrophobicity gradient. International Journal of Extreme Manufacturing 6, 025502 (2024). doi: 10.1088/2631-7990/ad18fb |
| [29] | Li, J. et al. Directional transport of high-temperature Janus droplets mediated by structural topography. Nature Physics 12, 606-612 (2016). doi: 10.1038/nphys3643 |
| [30] | Leon, V. J. & Varanasi, K. K. Self-propulsion of boiling droplets on thin heated oil films. Physical Review Letters 127, 074502 (2021). doi: 10.1103/PhysRevLett.127.074502 |
| [31] | Liu, M. J. et al. Inhibiting random droplet motion on hot surfaces by engineering symmetry-breaking Janus-mushroom structure. Advanced Materials 32, 1907999 (2020). doi: 10.1002/adma.201907999 |
| [32] | Cheng, Z. L. et al. Designable and unidirectional motion of Leidenfrost droplets on heated asymmetric microgrooves written by femtosecond laser. Applied Physics Letters 124, 061601 (2024). doi: 10.1063/5.0187674 |
| [33] | Liu, C. et al. Droplet interactions with hot surfaces: boiling modes, Leidenfrost temperature, dynamics, and applications. Small 21, 2501592 (2025). doi: 10.1002/smll.202501592 |
| [34] | Sahoo, V. et al. Elongated bouncing and reduced contact time of a drop in the Janus state. Langmuir 34, 10874-10879 (2018). doi: 10.1021/acs.langmuir.8b02092 |
| [35] | Yong, J. L. et al. Nature-inspired superwettability achieved by femtosecond lasers. Ultrafast Science 2022, 9895418 (2022). doi: 10.34133/2022/9895418 |
| [36] | Gao, L., Zhang, Q. M. & Gu, M. Femtosecond laser micro/nano processing: from fundamental to applications. International Journal of Extreme Manufacturing 7, 022010 (2025). doi: 10.1088/2631-7990/ad943e |
| [37] | Lin, Z. Y. & Hong, M. H. Femtosecond laser precision engineering: from micron, submicron, to nanoscale. Ultrafast Science 2021, 9783514 (2021). doi: 10.34133/2021/9783514 |
| [38] | Yong, J. L. & Wu, D. Bioinspired controlling the surface wettability of materials by femtosecond laser: current progress and challenges (invited). Chinese Journal of Lasers 51, 0102002 (2024). doi: 10.3788/CJL231364 |
| [39] | Liu, C. et al. Steerable drops on heated concentric microgroove arrays. Nature Communications 13, 3141 (2022). doi: 10.1038/s41467-022-30837-z |
| [40] | Marín, Á. G. et al. Capillary droplets on leidenfrost micro-ratchets. Physics of Fluids 24, 122001 (2012). doi: 10.1063/1.4768813 |
| [41] | Liu, C. et al. One-step process for dual-scale ratchets with enhanced mobility of leidenfrost droplets. Journal of Colloid and Interface Science 569, 229-234 (2020). doi: 10.1016/j.jcis.2020.02.076 |
| [42] | Long, J. Y. et al. Superhydrophilicity to superhydrophobicity transition of picosecond laser microstructured aluminum in ambient air. Journal of Colloid and Interface Science 441, 1-9 (2015). doi: 10.1016/j.jcis.2014.11.015 |
| [43] | Liu, C. et al. Multibioinspired JANUS membranes with spatial surface refreshment for enhanced fog collection. Advanced Materials Interfaces 8, 2101212 (2021). doi: 10.1002/admi.202101212 |
| [44] | Guo, Q. M. et al. Directional propulsion of transition boiling droplets on high-temperature surfaces induced by tilted nanoforests with asymmetric wettability. Surfaces and Interfaces 56, 105623 (2025). doi: 10.1016/j.surfin.2024.105623 |
| [45] | Kim, H. et al. On the effect of surface roughness height, wettability, and nanoporosity on leidenfrost phenomena. Applied Physics Letters 98, 083121 (2011). doi: 10.1063/1.3560060 |
| [46] | Kruse, C. et al. Extraordinary shifts of the Leidenfrost temperature from multiscale micro/nanostructured surfaces. Langmuir 29, 9798-9806 (2013). doi: 10.1021/la401936w |
| [47] | Agapov, R. L. et al. Asymmetric wettability of nanostructures directs Leidenfrost droplets. ACS Nano 8, 860-867 (2014). doi: 10.1021/nn405585m |
| [48] | Dupeux, G. et al. Viscous mechanism for Leidenfrost propulsion on a ratchet. Europhysics Letters 96, 58001 (2011). doi: 10.1209/0295-5075/96/58001 |
| [49] | Ben-Yakar, A. et al. Thermal and fluid processes of a thin melt zone during femtosecond laser ablation of glass: the formation of rims by single laser pulses. Journal of Physics D: Applied Physics 40, 1447-1459 (2007). doi: 10.1088/0022-3727/40/5/021 |
| [50] | Yong, J. L. et al. Rapid fabrication of large-area concave microlens arrays on PDMS by a femtosecond laser. ACS Applied Materials & Interfaces 5, 9382-9385 (2013). doi: 10.1021/am402923t |
| [51] | Borowiec, A. et al. Transmission and scanning electron microscopy studies of single femtosecond- laser-pulse ablation of silicon. Applied Physics A 76, 201-207 (2003). doi: 10.1007/s003390201409 |
| [52] | Zhang, P. P. et al. Bioinspired self-propulsion of water droplets at the convergence of Janus-textured heated substrates. Advanced Functional Materials 29, 1904535 (2019). |
| [53] | Yong, J. L. et al. Triboelectric “electrostatic tweezers” for manipulating droplets on lubricated slippery surfaces prepared by femtosecond laser processing. International Journal of Extreme Manufacturing 6, 035002 (2024). doi: 10.1088/2631-7990/ad2cdf |
| [54] | Wang, Y. C. et al. Glycerol-assisted grain modulation in femtosecond-laser-induced photochemical synthesis of patterned ZnO nanomaterials. Light: Advanced Manufacturing 6, 7 (2025). doi: 10.37188/lam.2025.007 |
| [55] | Huang, L. et al. Imaging/nonimaging microoptical elements and stereoscopic systems based on femtosecond laser direct writing. Light: Advanced Manufacturing 4, 37 (2023). doi: 10.37188/lam.2023.037 |
| [56] | Zhang, B., Yan, W. C. & Chen, F. Recent advances in femtosecond laser direct writing of three-dimensional periodic photonic structures in transparent materials. Advanced Photonics 7, 034002 (2025). doi: 10.1117/1.ap.7.3.034002 |