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Volumn 368, Issue 1, 2012, Pages 584-591
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Durable Lotus-effect surfaces with hierarchical structure using micro- and nanosized hydrophobic silica particles
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Author keywords
Durability; Hierarchical structure; Lotus; Superhydrophobicity; Wetting transition
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Indexed keywords
ATOMIC FORCE MICROSCOPES;
BALL ON FLATS;
ENGINEERING APPLICATIONS;
HIERARCHICAL STRUCTURES;
HIGH DURABILITY;
LOTUS;
LOTUS EFFECT;
LOW WATER;
MICRO PATTERN;
MICRO-PARTICLES;
MICROPATTERNED SURFACE;
MULTISCALES;
NANO SCALE;
NANO-SIZED;
NANOPARTICULATE COATINGS;
NELUMBO NUCIFERA;
PITCH VALUES;
SELF-CLEANING EFFECTS;
SILICA PARTICLES;
SPRAY METHOD;
STRUCTURED SURFACES;
SUPERHYDROPHOBICITY;
TRIBOMETERS;
WATER CONTACT ANGLE;
WATER JETS;
WATER REPELLENCY;
WETTING TRANSITION;
ATOMIC FORCE MICROSCOPY;
CONTACT ANGLE;
DURABILITY;
FLOW OF FLUIDS;
MICROSTRUCTURE;
SILICA;
WEAR RESISTANCE;
HYDROPHOBICITY;
EPOXY RESIN;
NANOCOATING;
NANOMATERIAL;
NANOPARTICLE;
SILICON;
ARTICLE;
ATOMIC FORCE MICROSCOPY;
CONTACT ANGLE;
FLUID FLOW;
HYDROPHOBICITY;
HYSTERESIS;
MECHANICAL STRESS;
NANOFABRICATION;
NELUMBO NUCIFERA;
NONHUMAN;
PARTICLE SIZE;
PRIORITY JOURNAL;
SURFACE PROPERTY;
WETTABILITY;
BIOMIMETIC MATERIALS;
HYDROPHOBIC AND HYDROPHILIC INTERACTIONS;
LOTUS;
MATERIALS TESTING;
MICROSCOPY, ATOMIC FORCE;
MICROTECHNOLOGY;
NANOPARTICLES;
PLANT LEAVES;
SILICON DIOXIDE;
SURFACE PROPERTIES;
WATER;
WETTABILITY;
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EID: 84855842396
PISSN: 00219797
EISSN: 10957103
Source Type: Journal
DOI: 10.1016/j.jcis.2011.09.049 Document Type: Article |
Times cited : (149)
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References (28)
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