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Thermomechanical, water absorption, ultraviolet resistance and laser‐assisted electroless plating behavior of Cu 2 O and melamine–formaldehyde‐coated sisal fiber‐modified poly(lactic acid) composites
Author(s) -
Tengsuthiwat Jiratti,
Yorseng Krittirash,
Siengchin Suchart,
Parameswaranpillai Jyotishkumar
Publication year - 2019
Publication title -
polymer composites
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.577
H-Index - 82
eISSN - 1548-0569
pISSN - 0272-8397
DOI - 10.1002/pc.25182
Subject(s) - materials science , composite material , ultimate tensile strength , sisal , crystallinity , absorption of water , thermal stability , fiber , chemical engineering , engineering
Poly(lactic acid ) (PLA)/Cu 2 O composites and melamine–formaldehyde‐coated sisal fibers (MF‐sisal fibers) modified PLA/Cu 2 O hybrid composites were prepared. The effect of Cu 2 O and MF‐sisal fibers on the tensile properties, fracture morphology, crystallinity, thermal and electrical conductivity, thermal stability, water absorption, UV resistance, and laser‐assisted metallization by electroless plating were systematically studied. The addition of MF‐sisal fibers recompensed the tensile properties (strength and elongation at break [EB]) and thermal stability of the PLA/Cu 2 O composites. The crystallinity, thermal conductivity, and electrical conductivity of the PLA matrix marginally increased in the presence of Cu 2 O and MF‐sisal fibers. The water absorption was reduced for the PLA/Cu 2 O composites but increased for the MF‐sisal fibers modified PLA/Cu 2 O hybrid composites due to the presence of free hydroxyl groups present in the MF‐sisal fibers. The presence of Cu 2 O obstructed the UV transmission through the PLA composites and hybrid composites, clearly showing the UV shielding efficiency of the Cu 2 O particles. The samples were irradiated with fiber pulse laser for metallization by electroless plating. The SEM micrographs of the irradiated samples revealed an increase in surface roughness with increasing fluence. Further, Talysurf series 2 was used to quantify the roughness of the irradiated composites. Finally, the laser treated samples were selectively metallized by electroless plating. POLYM. COMPOS., 40:3264–3274, 2019. © 2019 Society of Plastics Engineers

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