Journal of the Chinese Ceramic Society, Volume. 53, Issue 8, 2248(2025)
Organopolysiloxane
[1] [1] XU C L, SONG F, WANG X L, et al. Surface modification with hierarchical CuO arrays toward a flexible, durable superhydrophobic and self-cleaning material[J]. Chem Eng J, 2017, 313: 1328-1334.
[2] [2] WATSON G S, GREEN D W, SCHWARZKOPF L, et al. A gecko skin micro/nano structure-A low adhesion, superhydrophobic, anti-wetting, self-cleaning, biocompatible, antibacterial surface[J]. Acta Biomater, 2015, 21: 109-122.
[3] [3] LIU S H, LATTHE S S, YANG H T, et al. Raspberry-like superhydrophobic silica coatings with self-cleaning properties[J]. Ceram Int, 2015, 41(9): 11719-11725.
[4] [4] WANG F J, SHEN T H, LI C Q, et al. Low temperature self-cleaning properties of superhydrophobic surfaces[J]. Appl Surf Sci, 2014, 317: 1107-1112.
[5] [5] ZHANG M Q, FENG S L, WANG L, et al. Lotus effect in wetting and self-cleaning[J]. Biotribology, 2016, 5: 31-43.
[6] [6] SHIBRAEN M H M A, YAGOUB H, ZHANG X J, et al. Anti-fogging and anti-frosting behaviors of layer-by-layer assembled cellulose derivative thin film[J]. Appl Surf Sci, 2016, 370: 1-5.
[7] [7] LATURKAR S V, MAHANWAR P A. Superhydrophobic coatings using nanomaterials for anti-frost applications - review[J]. Nanosystems: Phys Chem Math, 2016: 650-656.
[8] [8] CHEN J J, ZHANG L, ZENG Z X, et al. Facile fabrication of antifogging, antireflective, and self-cleaning transparent silica thin coatings[J]. Colloids Surf A Physicochem Eng Aspects, 2016, 509: 149-157.
[9] [9] WEN M X, WANG L, ZHANG M Q, et al. Antifogging and icing-delay properties of composite micro- and nanostructured surfaces[J]. ACS Appl Mater Interfaces, 2014, 6(6): 3963-3968.
[10] [10] WANG H Y, HU Z Y, ZHU Y X, et al. Toward easily enlarged superhydrophobic materials with stain-resistant, oil-water separation and anticorrosion function by a water-based one-step electrodeposition method[J]. Ind Eng Chem Res, 2017, 56(4): 933-941.
[11] [11] QIAN H C, XU D K, DU C W, et al. Dual-action smart coatings with a self-healing superhydrophobic surface and anti-corrosion properties[J]. J Mater Chem A, 2017, 5(5): 2355-2364.
[12] [12] ZHANG Z Z, GE B, MEN X H, et al. Mechanically durable, superhydrophobic coatings prepared by dual-layer method for anti-corrosion and self-cleaning[J]. Colloids Surf A Physicochem Eng Aspects, 2016, 490: 182-188.
[13] [13] PAN S, WANG N, XIONG D S, et al. Fabrication of superhydrophobic coatingviaspraying method and its applications in anti-icing and anti-corrosion[J]. Appl Surf Sci, 2016, 389: 547-553.
[14] [14] WANG Z W, SU Y L, LI Q, et al. Researching a highly anti-corrosion superhydrophobic film fabricated on AZ91D magnesium alloy and its anti-bacteria adhesion effect[J]. Mater Charact, 2015, 99: 200-209.
[15] [15] MA Z, AI J W, SHI Y S, et al. A superhydrophobic droplet-based magnetoelectric hybrid system to generate electricity and collect water simultaneously[J]. Adv Mater, 2020, 32(50): 2006839.
[16] [16] LI L H, BAI Y Y, LI L L, et al. A superhydrophobic smart coating for flexible and wearable sensing electronics[J]. Adv Mater, 2017, 29(43): 1702517.
[17] [17] ELZAABALAWY A, MEGUID S A. Development of novel superhydrophobic coatings using siloxane-modified epoxy nanocomposites[J]. Chem Eng J, 2020, 398: 125403.
[18] [18] ZHANG Y Q, YANG S, WANG S L, et al. Engineering high-performance MoO2-based nanomaterials with supercapacity and superhydrophobicity by tuning the raw materials source[J]. Small, 2018, 14(25): 1800480.
[19] [19] ZHANG B B, YAN J Y, XU W C, et al. Robust, scalable and fluorine-free superhydrophobic anti-corrosion coating with shielding functions in marine submerged and atmospheric zones[J]. Mater Des, 2022, 223: 111246.
[20] [20] LI H Y, TIAN Y L, YANG Z. Stability mechanism of laser-induced fluorinated super-hydrophobic coating in alkaline solution[J]. J Bionic Eng, 2022, 19(1): 113-125.
[21] [21] FURTAT P, LENZ-LEITE M, IONESCU E, et al. Synthesis of fluorine-modified polysilazanesviaSi-H bond activation and their application as protective hydrophobic coatings[J]. J Mater Chem A, 2017, 5(48): 25509-25521.
[24] [24] Arkles B. Tailoring surfaces with silanes[J]. Chemtech, 1977, 7: 766-778.
[25] [25] BOUTEVIN B, GUIDA-PIETRASANTA F, RATSIMIHETY A. Synthesis of photocrosslinkable fluorinated polydimethylsiloxanes: Direct introduction of acrylic pendant groupsviahydrosilylation[J]. J Polym Sci Part A Polym Chem, 2000, 38(20): 3722-3728.
[26] [26] CUI X J, ZHONG S L, WANG H Y. Emulsifier-free core-shell polyacrylate latex nanoparticles containing fluorine and silicon in shell[J]. Polymer, 2007, 48(25): 7241-7248.
[27] [27] DREHER W R, SINGH A, URBAN M W. Effect of perfluoroalkyl chain length on synthesis and film formation of fluorine-containing colloidal dispersions[J]. Macromolecules, 2005, 38(11): 4666-4672.
[28] [28] DREHER W R, JARRETT W L, URBAN M W. Stable nonspherical fluorine-containing colloidal dispersions: synthesis and film formation[J]. Macromolecules, 2005, 38(6): 2205-2212.
[29] [29] 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 Appl Mater Interfaces, 2022, 14(42): 48106-48122.
[30] [30] VENNE C, VU N N, LADHARI S, et al. One-pot preparation of superhydrophobic polydimethylsiloxane-coated cottonviawater/oil/water emulsion approach for enhanced resistance to chemical and bacterial adhesion[J]. Prog Org Coat, 2023, 174: 107249.
[31] [31] ZHU P C, MENG W D, HUANG Y G. Synthesis and antibiofouling properties of crosslinkable copolymers grafted with fluorinated aromatic side chains[J]. RSC Adv, 2017, 7(6): 3179-3189.
[33] [33] KWON I M, SONG I H, PARK Y J, et al. Pore characterization of a microporous SiON membrane derived from polysiloxazaneviathermal pyrolysis: Prospects for hydrogen separation[J]. Res Chem Intermed, 2010, 36(6): 767-774.
[34] [34] CHOONG KWET YIVE N S, CORRIU R J P, LECLERCQ D, et al. Silicon carbonitride from polymeric precursors: Thermal cross-linking and pyrolysis of oligosilazane model compounds[J]. Chem Mater, 1992, 4(1): 141-146.
[35] [35] LIU G Y, WANG J J, WANG W, et al. A novel PET fabric with durable anti-fouling performance for reusable and efficient oil-water separation[J]. Colloids Surf A Physicochem Eng Aspects, 2019, 583: 123941.
Get Citation
Copy Citation Text
WANG Qi, PENG Mengyuan, WANG Xiaopeng, SHA Min, ZHANG Ding, JIANG Biao. Organopolysiloxane[J]. Journal of the Chinese Ceramic Society, 2025, 53(8): 2248
Category:
Received: Jan. 22, 2025
Accepted: Sep. 5, 2025
Published Online: Sep. 5, 2025
The Author Email: ZHANG Ding (zhangdingkathy@njust.edu.cn)