Superhydrophobic wood fabricated by epoxy/Cu2(OH)3Cl NPs/stearic acid with performance of desirable self-cleaning, anti-mold, dimensional stability, mechanical and chemical durability
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G. Du | J. Morrell | Q. Lu | K. Zhan | H. Wan | Long Yang | Rui-Rui Cheng | Sengwei Xia | Tengfei Yi | Wei Gao | Haiqiu Jiang
[1] Wei Gao,et al. Preparation of superhydrophobic wood surfaces via in-situ synthesis of Cu2(OH)3Cl nano-flowers and impregnating PF&STA to improve chemical and mechanical durability , 2021 .
[2] K. F. Rabbi,et al. Ultra-thin self-healing vitrimer coatings for durable hydrophobicity , 2021, Nature Communications.
[3] Huaiyuan Wang,et al. A mechanically robust slippery surface with ‘corn-like’ structures fabricated by in-situ growth of TiO2 on attapulgite , 2021, Chemical Engineering Journal.
[4] Zhong Chen,et al. A breathable and environmentally friendly superhydrophobic coating for anti-condensation applications , 2021 .
[5] Jian Qiu,et al. Manufacturing of robust superhydrophobic Wood surfaces based on PEG–Functionalized SiO2/PVA/PAA/Fluoropolymer hybrid transparent coating , 2021 .
[6] R. Oladi,et al. Physicochemical Properties of Thermally Treated Poplar Wood in Silicone and Rapeseed Oils: A Comparative Study , 2021 .
[7] A. Amirfazli,et al. Durable Superhydrophobic Wood via One-Step Immersion in Composite Silane Solution , 2021, ACS omega.
[8] Qiang Wu,et al. Gentle fabrication of colorful superhydrophobic bamboo based on metal-organic framework. , 2021, Journal of colloid and interface science.
[9] Feng Xu,et al. Superhydrophobic and oleophobic dual-function coating with durablity and self-healing property based on a waterborne solution , 2021 .
[10] Wei Gao,et al. A cost effective strategy to fabricate STA@PF@Cu2O hierarchical structure on wood surface: aimed at superhydrophobic modification , 2021 .
[11] S. Mazlan,et al. Mechanochemical durability and self-cleaning performance of zinc oxide-epoxy superhydrophobic coating prepared via a facile one-step approach , 2021 .
[12] Yan Wu,et al. Synthesis of Cu2(OH)3Cl as facile and effective Fenton catalysts for mineralizing aromatic contaminants: Combination of σ-Cu-ligand and self-redox property , 2021 .
[13] Wensheng Lin,et al. Fabrication of transparent and durable superhydrophobic polysiloxane/SiO2 coating on the wood surface , 2021, Cellulose.
[14] M. Camaiti,et al. One-step fabrication of robust and durable superamphiphobic, self-cleaning surface for outdoor and in situ application on building substrates. , 2021, Journal of colloid and interface science.
[15] Qiuyu Zhang,et al. Mechanically robust, self-healing superhydrophobic anti-icing coatings based on a novel fluorinated polyurethane synthesized by a two-step thiol click reaction , 2021 .
[16] Bing Li,et al. Nonfluorinated, transparent, and spontaneous self-healing superhydrophobic coatings enabled by supramolecular polymers , 2021 .
[17] Ning Wang,et al. Robust superhydrophobic wood surfaces with mechanical durability , 2021 .
[18] Huosheng Li,et al. Biosorbent with superhydrophobicity and superoleophilicity for spilled oil removal. , 2020, Ecotoxicology and environmental safety.
[19] H. Zhang,et al. Preparation of functional bamboo by combining nano-copper with hemicellulose and lignin under high voltage electric field (HVEF). , 2020, Carbohydrate polymers.
[20] H. Khonakdar,et al. Developing antibacterial superhydrophobic coatings based on polydimethylsiloxane/silver phosphate nanocomposites: Assessment of surface morphology, roughness and chemistry , 2020 .
[21] Shaohua Jiang,et al. Rewritable superhydrophobic coatings fabricated using water-soluble polyvinyl alcohol , 2020 .
[22] W. Gindl-Altmutter,et al. Superhydrophobic coatings on wood made of plant oil and natural wax , 2020 .
[23] Y. Chen,et al. Facile preparation of economical, eco-friendly superhydrophobic surface on paper substrate with excellent mechanical durability , 2020 .
[24] Changjun Liu,et al. Evaluation of the Engineering Applications of Superhydrophobic Metal Surfaces Achieved by a Spraying–Adhering Process Using Different Combinations of Hydrophobic Particles and Adhesives , 2020 .
[25] Zhanyou Ji,et al. Mechanically durable superhydrophobic surfaces by binding polystyene nanoparticles on fibers with aluminum phosphate followed by hydrophobization , 2020, Chemical Engineering Journal.
[26] Dieling Zhao,et al. Rheologically controlled design of nature-inspired superhydrophobic and self-cleaning membranes for clean water production , 2020, npj Clean Water.
[27] Xiao-ji Shen,et al. Superhydrophobic and antibacterial wood enabled by polydopamine-assisted decoration of copper nanoparticles , 2020 .
[28] Tao Yang,et al. Fabrication of superhydrophobic Eucalyptus wood surface with self-cleaning performance in air and oil environment and high durability , 2020 .
[29] Adesh Kumar,et al. A review on fundamentals, constraints and fabrication techniques of superhydrophobic coatings , 2020 .
[30] Chaoyi Peng,et al. Inverse infusion processed hierarchical structure towards superhydrophobic coatings with ultrahigh mechanical robustness , 2020 .
[31] Q. Cui,et al. Pressure-Induced Phase Transformation of Botallackite α-Cu2(OH)3Cl with a Two-Dimensional Layered Structure Synthesized via a Hydrothermal Strategy , 2020 .
[32] Zhihui Zhang,et al. Shape memory superhydrophobic surface with switchable transition between “Lotus Effect” to “Rose Petal Effect” , 2020 .
[33] Sumit Parvate,et al. Superhydrophobic Surfaces: Insights from Theory and Experiment. , 2020, The journal of physical chemistry. B.
[34] Zhenzhen Lu,et al. One-step facile route to fabricate functionalized nano-silica and silicone sealant based transparent superhydrophobic coating , 2019 .
[35] Yong Jiang,et al. Durable superhydrophobic coating based on inorganic/organic double-network polysiloxane and functionalized nanoparticles , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[36] Elena P. Ivanova,et al. Bio-inspired sustainable and durable superhydrophobic materials: from nature to market , 2019, Journal of Materials Chemistry A.
[37] Wei Gao,et al. Incorporation of a nano/micro CuO formulation into phenol formaldehyde (PF) resin: Curing kinetics, morphological analysis, and application , 2019, Journal of Wood Chemistry and Technology.
[38] F. Chu,et al. Modification of wood cell wall with water-soluble vinyl monomer to improve dimensional stability and its mechanism , 2019, Wood Science and Technology.
[39] Jinkee Hong,et al. Mechanically durable superhydrophobic PDMS-candle soot composite coatings with high biocompatibility , 2019, Journal of Industrial and Engineering Chemistry.
[40] Huan Liu,et al. One-Step Fabrication of Robust Superhydrophobic Steel Surfaces with Mechanical Durability, Thermal Stability, and Anti-icing Function. , 2019, ACS applied materials & interfaces.
[41] Xinyan Xiao,et al. Fabrication of stable superhydrophobic coating on fabric with mechanical durability, UV resistance and high oil-water separation efficiency , 2019, Surface and Coatings Technology.
[42] F. Fu,et al. Preparation of a robust cellulose nanocrystal superhydrophobic coating for self-cleaning and oil-water separation only by spraying , 2018, Industrial Crops and Products.
[43] Lei Wang,et al. Serviceability analysis of wood–plastic composites impregnated with paraffin-based Pickering emulsions in simulated sea water–acid rain conditions , 2018, Polymer Testing.
[44] J. Jakes,et al. Acetylation increases relative humidity threshold for ion transport in wood cell walls – A means to understanding decay resistance , 2018, International Biodeterioration & Biodegradation.
[45] Junjie Wang,et al. Facile fabrication of a PDMS @ stearic acid-Al(OH)3 coating on lignocellulose composite with superhydrophobicity and flame retardancy , 2018 .
[46] Zhongxin Zhou,et al. Effects of Extraction Methods on Anti-Mould Property of Bamboo Strips , 2018 .
[47] S. Mohanty,et al. A Review on Superhydrophobic Polymer Nanocoatings: Recent Development and Applications , 2018 .
[48] K. Tu,et al. Facile preparation of mechanically durable, self-healing and multifunctional superhydrophobic surfaces on solid wood , 2018 .
[49] K. Winiarska,et al. CuO and Cu2(OH)3Cl loaded gel-type anion exchange hybrid polymers obtained via tetrachlorocuprate ionic form , 2017 .
[50] H. Seo,et al. Paratacamite phase stability and improved optical properties of Cu2(OH)3Cl crystal via Ni-doping , 2017 .
[51] Ye Xiong,et al. A simple, one-step hydrothermal approach to durable and robust superparamagnetic, superhydrophobic and electromagnetic wave-absorbing wood , 2016, Scientific Reports.
[52] S. Shi,et al. Soy protein isolate-based films reinforced by surface modified cellulose nanocrystal , 2016 .
[53] Amish J. Patel,et al. Spontaneous recovery of superhydrophobicity on nanotextured surfaces , 2015, Proceedings of the National Academy of Sciences.
[54] H. Palza,et al. Synthesis of copper nanostructures on silica-based particles for antimicrobial organic coatings , 2015 .
[55] Yun Lu,et al. Superhydrophobic conductive wood with oil repellency obtained by coating with silver nanoparticles modified by fluoroalkyl silane , 2015 .
[56] B. Li,et al. Selective synthesis of clinoatacamite Cu2(OH)3Cl and tenorite CuO nanoparticles by pH control , 2014, Journal of Nanoparticle Research.
[57] Jian Li,et al. Improvement of mechanical robustness of the superhydrophobic wood surface by coating PVA/SiO2 composite polymer , 2013 .
[58] N. Nuraje,et al. Superhydrophobic electrospun nanofibers , 2013 .
[59] Lei Jiang,et al. A multi-structural and multi-functional integrated fog collection system in cactus , 2012, Nature Communications.
[60] Jian Li,et al. Fabrication of superhydrophobic wood surface by a sol–gel process , 2011 .
[61] Hong-Bo Sun,et al. Three‐Level Biomimetic Rice‐Leaf Surfaces with Controllable Anisotropic Sliding , 2011 .
[62] Junhui He,et al. One-step hydrothermal creation of hierarchical microstructures toward superhydrophilic and superhydrophobic surfaces. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[63] Zhiguang Guo,et al. Stable biomimetic super-hydrophobic engineering materials. , 2005, Journal of the American Chemical Society.
[64] F. Shi,et al. Combining a Layer‐by‐Layer Assembling Technique with Electrochemical Deposition of Gold Aggregates to Mimic the Legs of Water Striders , 2005 .
[65] Jin Zhai,et al. Creation of a superhydrophobic surface from an amphiphilic polymer. , 2003, Angewandte Chemie.
[66] T. Shripathi,et al. Quantum size effects in CuO nanoparticles , 2000 .