JOURNAL OF SHANDONG UNIVERSITY(NATURAL SCIENCE) ›› 2025, Vol. 60 ›› Issue (10): 59-78.doi: 10.6040/j.issn.1671-9352.0.2025.155
WANG Yutao, LIAN Yuechang, ZHAO Shengyuan, LIU Wendong*
CLC Number:
[1] WANG D H, SUN Q Q, HOKKANEN M J, et al. Design of robust superhydrophobic surfaces[J]. Nature, 2020, 582(7810):55-59. [2] PARVATE S, DIXIT P, CHATTOPADHYAY S. Superhydrophobic surfaces: insights from theory and experiment[J]. The Journal of Physical Chemistry B, 2020, 124(8):1323-1360. [3] FENG Y C, CHENG Y F. An intelligent coating doped with inhibitor-encapsulated nanocontainers for corrosion protection of pipeline steel[J]. Chemical Engineering Journal, 2017, 315:537-551. [4] JIANG J W, SHEN Y Z, XU Y, et al. An energy-free strategy to elevate anti-icing performance of superhydrophobic materials through interfacial airflow manipulation[J]. Nature Communications, 2024, 15:777. [5] XIANG S Y, LIU W D. Self-healing superhydrophobic surfaces: healing principles and applications[J]. Advanced Materials Interfaces, 2021, 8(12):2100247. [6] QUAN YY, CHEN Z, LAI Y K, et al. Recent advances in fabricating durable superhydrophobic surfaces: a review in the aspects of structures and materials[J]. Materials Chemistry Frontiers, 2021, 5(4):1655-1682. [7] LI S H, HUANG J Y, CHEN Z, et al. A review on special wettability textiles: theoretical models, fabrication technologies and multifunctional applications[J]. Journal of Materials Chemistry A, 2017, 5(1):31-55. [8] LI Y, LI L, SUN J Q. Bioinspired self-healing superhydrophobic coatings[J].Angewandte Chemie(International Ed), 2010, 49(35):6129-6133. [9] ZHANG C J, LIANG F H, ZHANG W, et al.Constructing mechanochemical durable and self-healing superhydrophobic surfaces[J]. ACS Omega, 2020, 5(2):986-994. [10] TORUN I, RUZI M, ER F, et al. Superhydrophobic coatings made from biocompatible polydimethylsiloxane and natural wax[J]. Progress in Organic Coatings, 2019, 136:105279. [11] ZHANG K Q, ZHU Y, GAO Y F. Superhydrophobic andsuperoleophilic fabrics with self-healing property and durability based on a waterborne aqueous solution[J]. Materials Today Communications, 2022, 33:104701. [12] SUN H Y, LI T, LEI F, et al. Fast self-healing superhydrophobic thermal energy storage coatings fabricated by bio-based beeswax and artificially cultivated diatom frustules[J]. ACS Applied Materials & Interfaces, 2021, 13(40):48088-48100. [13] WEN X J, LI H L, LI R Z, et al. Coral-inspired superhydrophobic triboelectric nanogenerators with unprecedented wear resistance and sub-zero temperature self-healing capability[J]. Advanced Functional Materials, 2025, 35(31):2501706. [14] YIMYAI T, CRESPY D, ROHWERDER M. Corrosion-responsive self-healing coatings[J]. Advanced Materials, 2023, 35(47):2300101. [15] WANG Z S, HOU YY, YADAV A, et al. Self-healing superhydrophobic coatings with multiphase repellence property[J]. ACS Applied Materials & Interfaces, 2025, 17(4):7174-7189. [16] CHEN K L, ZHOU J L, CHE X G, et al. One-step synthesis of core shell cellulose-silica/n-octadecane microcapsules and their application in waterborne self-healing multiple protective fabric coatings[J]. Journal of Colloid and Interface Science, 2020, 566:401-410. [17] YAN K, WANG J, ZONG Y, et al. A multifunctional coating toward wearable superhydrophobic fabric sensor with self-healing and flame-retardant properties with high fire alarm response[J]. Chemical Engineering Journal, 2024, 489:151315. [18] NADERIZADEH S, DANTE S, PICONE P, et al.Bioresin-based superhydrophobic coatings with reduced bacterial adhesion[J]. Journal of Colloid and Interface Science, 2020, 574:20-32. [19] WANG L, GONG Q H, ZHAN S H, et al. Robust anti-icing performance of a flexible superhydrophobic surface[J]. Advanced Materials, 2016, 28(35):7729-7735. [20] CELIK N, SAHIN F, OZEL SS, et al. Self-healing of biocompatible superhydrophobic coatings: the interplay of the size and loading of particles[J]. Langmuir, 2023, 39(9):3194-3203. [21] ZHANG W L, LI S Y, WEI D S, et al. Fluorine-free, robust and self-healing superhydrophobic surfaces with anticorrosion and antibacterial performances[J]. Journal of Materials Science & Technology, 2024, 186:231-243. [22] LIU Y D, ZHU X F, ZHANG Z H, et al. Multi-scenario applications offluoro-free super liquid-repellent particles prepared through excluded volume effect[J]. Advanced Functional Materials, 2025, 35(1):2410299. [23] MEHANNA Y A, SADLER E, UPTON R L, et al. The challenges, achievements and applications of submersible superhydrophobic materials[J]. Chemical Society Reviews, 2021, 50(11):6569-6612. [24] WITTMER A, WELLEN R, SAALWÄCHTER K, et al. Moisture-mediated self-healing kinetics and molecular dynamics in modified polyurethane urea polymers[J]. Polymer, 2018, 151:125-135. [25] ONI B A, TOMOMEWO O S, EVRO S, et al. A review of anticorrosive, superhydrophobic and self-healing properties of coating-composites as corrosion barriers on magnesium alloys: recent advances, challenges and future directions[J]. Journal of Magnesium and Alloys, 2025, 13(6):2435-2469. [26] ZISMAN W A. Relation of the equilibrium contact angle to liquid and solid constitution[M] //Contact Angle, Wettability, and Adhesion. Washington: American Chemical Society, 1964:1-51. [27] SATO M. Studies on the wetting effect and the surface tension of solids[J]. Proceedings of the Japan Academy, 1954, 30(3):193-198. [28] PAULO B B, SCHMIELE M, MAXIMO G J, et al. Carnauba wax particles: investigation of dripping and cold-extrusion processes[J]. Journal of the American Oil Chemists Society, 2019, 96(7):847-859. [29] DI NICOLA G, PIERANTOZZI M, TOMASSETTI S, et al. Surface tension calculation from liquid viscosity data of silanes[J]. Fluid Phase Equilibria, 2018, 463:11-17. [30] LIU J, YAO Y, LI X H, et al. Fabrication of advanced polydimethylsiloxane-based functional materials: bulk modifications and surfacefunctionalizations[J]. Chemical Engineering Journal, 2021, 408:127262. [31] HAYNES W M. CRC Handbook of Chemistry and Physics[M]. 97th ed. Boca Raton: CRC Press, 2016. [32] ARKLES B.Silane coupling agents: connecting across boundaries[M]. 3rd ed. Morrisville: Gelest, 2014. [33] LI B, KAN L, ZHANG S, et al. Planting carbon nanotubes onto supramolecular polymer matrices for waterproof non-contact self-healing[J]. Nanoscale, 2019, 11(2):467-473. [34] WANG Z H, YUAN L, LIANG G Z, et al.Mechanically durable and self-healing super-hydrophobic coating with hierarchically structured KH570 modified SiO2-decorated aligned carbon nanotube bundles[J]. Chemical Engineering Journal, 2021, 408:127263. [35] AYDIN G, ABDULLAH T, OKAY O. 4D printing of self-healing and shape-memory hydrogels sensitive to body temperature[J]. European Polymer Journal, 2025, 223:113651. [36] FU Y H, XU F C, WENG D H, et al. Superhydrophobic foams with chemical-and mechanical-damage-healing abilities enabled by self-healing polymers[J]. ACS Applied Materials & Interfaces, 2019, 11(40):37285-37294. [37] TAO J Q, DONG L, WU Y L, et al. Fabrication of room temperature self-healing, robust superhydrophobic coatingsvia spraying dual cross-linking supramolecular silicone polymer/SiO2 composite[J]. Composites Part B: Engineering, 2024, 273:111245. [38] HUANG J C, QIU L T, NI C J, et al. Shape memory polymers with patternable recovery onset regulated by light[J]. Advanced Materials, 2024, 36(39):2408324. [39] GAO H, LI J R, LIU Y J, et al. Shape memory polymer solar cells with active deformation[J]. Advanced Composites and Hybrid Materials, 2021, 4(4):957-965. [40] ZHANG H Y, LAI H, CHENG Z J, et al. In-situ switchable superhydrophobic shape memory microstructure patterns with reversible wettability and adhesion[J]. Applied Surface Science, 2020, 525:146525. [41] ZHANG L, ZHANG LL, XU J Y, et al. Shape memory polymer microtransfer printing stamp with macro-micro adjustable adhesion superhydrophobic surface obtained by laser texturing[J]. ACS Applied Materials & Interfaces, 2025, 17(15):23368-23382. [42] WANG W, SALAZAR J, VAHABI H, et al. Metamorphic superomniphobic surfaces[J]. Advanced Materials, 2017, 29(27):1700295. [43] ZHANG J J, WEI J F, LI B C, et al. Long-term corrosion protection for magnesium alloy by two-layer self-healing superamphiphobic coatings based on shape memory polymers and attapulgite[J]. Journal of Colloid and Interface Science, 2021, 594:836-847. [44] QIN L M, CHEN N, ZHOU X, et al. A superhydrophobic aerogel with robust self-healability[J]. Journal of Materials Chemistry A, 2018, 6(10):4424-4431. [45] JIA S S, LU Y, LUO S, et al. Thermally-induced all-damage-healable superhydrophobic surface with photocatalytic performance from hierarchical BiOCl[J]. Chemical Engineering Journal, 2019, 366:439-448. [46] GOHARSHENAS M S, PARSIMEHR H, EHSANI A. Multifunctional superhydrophobic surfaces[J]. Advances in Colloid and Interface Science, 2021, 290:102397. [47] PAN S Y, CHEN M, WU L M. Smart superhydrophobic surface with restorable microstructure and self-healable surface chemistry[J]. ACS Applied Materials & Interfaces, 2020, 12(4):5157-5165. [48] ZHANG J J, ZHAO X, WEI J F, et al. Superhydrophobic coatings with photothermal self-healing chemical composition and microstructure for efficient corrosion protection of magnesium alloy[J]. Langmuir, 2021, 37(45):13527-13536. [49] WANG X L, YANG M M, REN Z H, et al.Mussel-inspired, hydrophobic association-regulated hydrogel electrolytes with super-adhesive and self-healing properties for durable and flexible zinc-ion batteries[J]. Energy Storage Materials, 2024, 70:103523. [50] XIANG Q, LIU H Q, HUANG M, et al. A superhydrophobic composite coating with transparency, long-term durability and self-healing properties for cleaning of photovoltaic systems[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2025, 716:136666. [51] YE C Y, LIU D, PENG X, et al. A hydrophobic self-repairing power textile for effective water droplet energy harvesting[J].ACS Nano, 2021, 15(11):18172-18181. [52] ZHAO X, WEI J F, LI B C, et al.A self-healing superamphiphobic coating for efficient corrosion protection of magnesium alloy[J]. Journal of Colloid and Interface Science, 2020, 575:140-149. [53] WU Y H, ZHAO W J, OU J F. Stable, superfast and self-healing fluid coating with active corrosion resistance[J]. Advances in Colloid and Interface Science, 2021, 295:102494. [54] YIMYAI T, CRESPY D, ROHWERDER M. Corrosion-responsive self-healing coatings[J]. Advanced Materials, 2023, 35(47):2300101. [55] YUAN G, LIU Y, NGO C V, et al. Rapid fabrication of anti-corrosion and self-healing superhydrophobic aluminum surfaces through environmentally friendly femtosecond laser processing[J]. Optics Express, 2020, 28(24):35636-35650. [56] LI B F, XUE S Y, MU P, et al. Robust self-healing graphene oxide-based superhydrophobic coatings for efficient corrosion protection of magnesium alloys[J]. ACS Applied Materials & Interfaces, 2022, 14(26):30192-30204. [57] DEHGHANI-SANIJ A R, DEHGHANI S R, NATERER G F, et al. Sea spray icing phenomena on marine vessels and offshore structures: Review and formulation[J]. Ocean Engineering, 2017, 132:25-39. [58] RAJPUT A, AK M, KIM S J, et al. Effects of the surface preparation on the life of epoxy coating in steel ship plates: an experimental study[J]. Ships and Offshore Structures, 2019, 14(suppl.1):199-206. [59] GAO J, ZHANG K, LI H, et al. Eco-friendly intrinsic self-healing superhydrophobic polyurea/TiO2 composite coatings for underwater drag reduction and antifouling[J]. Progress in Organic Coatings, 2023, 183:107769. [60] XU L, YANG X N, FU X, et al. Fluorinated epoxy based superhydrophobic coating with robust self-healing and anticorrosive performances[J]. Progress in Organic Coatings, 2022, 171:107045. [61] YANG X X, LI H, LI L, et al. Fluorine-free, short-process and robust superhydrophobic cotton fabric and its oil-water separation ability[J]. Progress in Organic Coatings, 2022, 172:107122. [62] BAI Z G, BAI Y Y, ZHANG G P, et al. A hydrogen bond based self-healing superhydrophobic octadecyltriethoxysilane-lignocellulose/silica coating[J]. Progress in Organic Coatings, 2021, 151:106104. [63] WANG Z H, YAO D D, HE Z J, et al. Fabrication of durable, chemically stable, self-healing superhydrophobic fabrics utilizing gellable fluorinated block copolymer for multifunctional applications[J]. ACS Applied Materials & Interfaces, 2022, 14(42):48106-48122. [64] YU Z P, ZHAN B, DONG L M, et al. Self-healing structured graphene surface with reversible wettability for oil-water separation[J]. ACS Applied Nano Materials, 2019, 2(3):1505-1515. [65] ZHU H, WU L Z, MENG X, et al. An anti-UV superhydrophobic material with photocatalysis, self-cleaning, self-healing and oil/water separation functions[J]. Nanoscale, 2020, 12(21):11455-11459. [66] EKEOCHA J, ELLINGFORD C, PAN M, et al. Challenges and opportunities of self-healing polymers and devices for extreme and hostile environments[J]. Advanced Materials, 2021, 33(33):2008052. [67] DU W L, ZHAO J X, HE X Y, et al. Integrating superhydrophobic coating with microbubble enhanced the drag reduction performance[J]. Colloids and Surfaces A:Physicochemical and Engineering Aspects, 2025, 722:137232. [68] CUI XX, LIU X L, CHEN H W, et al. Functionalized super-hydrophobic nanocomposite surface integrating with anti-icing and drag reduction properties[J]. Chemical Engineering Journal, 2024, 499:156093. [69] CHENG M J, SONG M M, DONG H Y, et al. Surface adhesive forces: a metric describing the drag-reducing effects of superhydrophobic coatings[J]. Small, 2015, 11(14):1665-1671. [70] SUN P F, FENG X M, TIAN G Z, et al. Ultrafast self-healing superhydrophobic surface for underwater drag reduction[J]. Langmuir, 2022, 38(35):10875-10885. [71] LIU Y B, LIU J, TIAN Y, et al. Robust organic-inorganic composite films with multifunctional properties of superhydrophobicity, self-healing, and drag reduction[J]. Industrial & Engineering Chemistry Research, 2019, 58(11):4468-4478. [72] SU J Y, SU F H, YU H, et al. Synthesis of superhydrophobic FAS-EP/PTFE coating with excellent drag reduction performance and mechanical robustness[J]. Applied Surface Science, 2023, 634:157644. [73] LI W L, LIU K X, ZHANG Y X, et al. A facile strategy to prepare robust self-healable superhydrophobic fabrics with self-cleaning, anti-icing, UV resistance, and antibacterial properties[J]. Chemical Engineering Journal, 2022, 446:137195. [74] FU K, LU C, LIU Y B, et al. Mechanically robust, self-healing superhydrophobic anti-icing coatings based on a novel fluorinated polyurethane synthesized by a two-step thiol click reaction[J]. Chemical Engineering Journal, 2021, 404:127110. [75] YANG C, GUO Z G. Biomimetic xanthiumstrumarium inspired superhydrophobic anti-/de-icing films with near-infrared light-induced self-healing[J]. Small, 2025, 21(26):2500016. [76] LIU Z Y, HU J H, JIANG G. Superhydrophobic and photothermal deicing composite coating with self-healing and anti-corrosion for anti-icing applications[J]. Surface and Coatings Technology, 2022, 444:128668. [77] AMIRCHAND K D, KAUR K, SINGH V. Biochar basedself cleaning superhydrophobic surface with aqueous DESphobic properties[J]. Journal of Molecular Liquids, 2023, 380:121736. [78] GUAN Y H, QIAO D, DONG L M, et al. Efficient recovery of highly viscous crude oil spill by superhydrophobic ocean biomass-based aerogel assisted with solar energy[J]. Chemical Engineering Journal, 2023, 467:143532. [79] DONG T, TIAN N, XU B, et al. Biomass poplar catkin fiber-based superhydrophobic aerogel with tubular-lamellar interweaved neurons-like structure[J]. Journal of Hazardous Materials, 2022, 429:128290. [80] ZHANG S G, YANG Y C, GAO B, et al. Superhydrophobic controlled-release fertilizers coated with bio-based polymers with organosilicon and nano-silica modifications[J]. Journal of Materials Chemistry A, 2017, 5(37):19943-19953. [81] ZHANG C, ZHUANG S J, CHEN X Y, et al. Biomass-based photothermal fabrics and superhydrophobic aerogel for self-floating solar evaporators with high energy efficiency in fresh water production from seawater[J]. Chemical Engineering Journal, 2024, 502:157948. [82] BAI J Y, YANG Y, WEN C, et al. Applications of magnesium alloys for aerospace: areview[J]. Journal of Magnesium and Alloys, 2023, 11(10):3609-3619. [83] VERONESI F, BOVERI G, MORA J, et al.Icephobic properties of anti-wetting coatings for aeronautical applications[J]. Surface and Coatings Technology, 2021, 421:127363. [84] CHEN Y J, SUI Z H, DU J. Review on aviation intelligent self-healing anti-corrosion coating[J]. Anti-Corrosion Methods and Materials, 2025, 72(2):170-177. [85] FU G J, DOU P, XIE C Y, et al. Preparation and performance study of self-repairing coating with superhydrophobic properties[J]. Applied Surface Science, 2025, 684:161946. [86] MORSHED-BEHBAHANI K, ALIYU A, BISHOP D P, et al. Additive manufacturing of copper-based alloys for high-temperature aerospace applications: a review[J]. Materials Today Communications, 2024, 38:108395. [87] GUO L, LIANG Y B, MA J C, et al. Integrated wearable collaborative strain sensor with simultaneous self-healing and superhydrophobic abilities for stable sensing monitoring[J]. Applied Materials Today, 2024, 39:102339. [88] LI L H, BAI Y Y, LI L L, et al. A superhydrophobic smart coating for flexible and wearable sensing electronics[J]. Advanced Materials, 2017, 29(43):1702517. |
[1] | LI Xiang-liang, SUN Yan-ge, LI Ying. Study of the stability of the CO2 aqueous foam [J]. JOURNAL OF SHANDONG UNIVERSITY(NATURAL SCIENCE), 2015, 50(11): 32-39. |
[2] | ZHANG Shu-qin,HOU Wan-guo,*,WANG Wen-xing . Sorption removal of p-nitrophenol by uncalcined and calcined Mg2Al layered double hydroxides [J]. J4, 2007, 42(9): 19-24 . |
[3] | XU Jie,HOU Wan-guo,*,ZHOU Wei-zhi,TAI Pei-dong and WANG Wen-xing . Sorption of lead on meadow brown soil in the northeast of China [J]. J4, 2007, 42(5): 50-54 . |
|