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ORIGINAL ARTICLE

Mechanical properties and photostability of fast-growing wood deposited with nano-Al2O3/ZnO composite films

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Pages 774-782 | Received 19 Sep 2023, Accepted 29 Dec 2023, Published online: 07 Jan 2024

References

  • Abid, N., et al., 2022. Synthesis of nanomaterials using various top-down and bottom-up approaches, influencing factors, advantages, and disadvantages: a review. Advances in Colloid and Interface Science, 300, 102597. https://doi.org/10.1016/j.cis.2021.102597.
  • Aghajani, H., Valefi, Z., and Zamani, P., 2022. Phase composition, microstructure, mechanical properties, and wear performance of nanostructured Al2O3 and Al2O3-Y2O3 coatings deposited by plasma spraying. Applied Surface Science, 585, 152754. https://doi.org/10.1016/j.apsusc.2022.152754.
  • ASTM (American Society for Testing and Materials), 2006. Standard practice for exposing nonmetallic materials in accelerated test devices that use laboratory light sources. ASTM G151. Annual book of ASTM standards. West Conshohocken, PA: ASTM.
  • Athulya, R., et al., 2023. Recent advances of nanotechnology in wood protection: a comprehensive review. Wood Material Science & Engineering, https://doi.org/10.1080/17480272.2023.2239800.
  • Bi, W., et al., 2021. Effects of chemical modification and nanotechnology on wood properties. Nanotechnology Reviews, 10 (1), 978–1008. https://doi.org/10.1515/ntrev-2021-0065.
  • Boruszewski, P., et al., 2021. Potential areas in Poland for forestry plantation. Forests, 12 (10), 1360. https://doi.org/10.3390/f12101360.
  • Cao, J., Rambo, C.R., and Sieber, H., 2004. Preparation of porous Al2O3-ceramics by biotemplating of wood. Journal of Porous Materials, 11 (3), 163–172. https://doi.org/10.1023/B:JOPO.0000038012.58705.c9.
  • Chen, C., et al., 2020. Forming textured hydrophobic surface coatings via mixed wax emulsion impregnation and drying of poplar wood. Wood Science and Technology, 54 (2), 421–439. https://doi.org/10.1007/s00226-020-01156-7.
  • Dang, B., et al., 2017. Fabrication of a nano-ZnO/polyethylene/wood-fiber composite with enhanced microwave absorption and photocatalytic activity via a facile hot-press method. Materials, 10 (11), 1267. https://doi.org/10.3390/ma10111267.
  • De Cademartori, P.H.G., et al., 2018. The use of low-pressure plasma on enhancing the attachment of Al2O3 nanoparticles to wood-plastic composites. Journal of Wood Chemistry and Technology, 38 (2), 71–83. https://doi.org/10.1080/02773813.2017.1372477.
  • Dong, X., et al., 2022. Low-value wood for sustainable high-performance structural materials. Nature Sustainability, 5 (7), 628–635. https://doi.org/10.1038/s41893-022-00887-8.
  • Fu, Y., et al., 2015. Comparison of ZnO nanorod array coatings on wood and their UV prevention effects obtained by microwave-assisted hydrothermal and conventional hydrothermal synthesis. Holzforschung, 69 (8), 1009–1014. https://doi.org/10.1515/hf-2014-0156.
  • Giudice, V.L., et al., 2023. Effect of thermo-vacuum modification on selected chemical, physical, and mechanical properties of Siberian larch (Larix sibirica L.) wood. Wood Material Science & Engineering, 0 (0), 1–10. https://doi.org/10.1080/17480272.2023.2212253.
  • Hwang, S.-H., et al., 2022. Effects of Al2O3 surface passivation on the radiation hardness of IGTO thin films for thin-film transistor applications. Applied Surface Science, 578, 152096. https://doi.org/10.1016/j.apsusc.2021.152096.
  • Immonen, K., et al., 2022. Potential of commercial wood-based materials as PCB substrate. Materials, 15 (7), Article 7. https://doi.org/10.3390/ma15072679.
  • ISO (International Organization for Standardization), 2011. Microbeam analysis – quantitative analysis using energy-dispersive spectrometry (EDS) for elements with an atomic number of 11 (Na) or above. ISO 22309. Geneva, Switzerland: ISO.
  • ISO (International Organization for Standardization), 2016a. Microbeam analysis – scanning electron microscopy – guidelines for calibrating image magnification. ISO 16700. Geneva, Switzerland: ISO.
  • ISO (International Organization for Standardization), 2016b. Metallic materials – instrumented indentation test for hardness and materials parameters – part 4: test method for metallic and non-metallic coatings. ISO14577. Geneva, Switzerland: ISO.
  • Liang, J., et al., 2021. Magnetron sputtering enabled sustainable synthesis of nanomaterials for energy electrocatalysis. Green Chemistry, 23 (8), 2834–2867. https://doi.org/10.1039/d0gc03994b.
  • Long, L., Wan, X., and Qu, Y., 2011. Study on wearing resistance and hardness of the nano-Al2O3 modified waterborne wood coating. Scientia Silvae Sinicae, 09, 108–113.
  • Martinka, J., et al., 2022. The effect of partial substitution of polyphosphates by aluminium hydroxide and borates on the technological and fire properties of medium density fibreboard. Wood Material Science & Engineering, 17 (6), 720–726. https://doi.org/10.1080/17480272.2021.1933175.
  • Nagarajappa, G.B., et al., 2020. Photostability of acetylated wood coated with nano zinc oxide. Maderas. Ciencia y Tecnología, 22 (3), 365–374. https://doi.org/10.4067/S0718-221X2020005000310.
  • Oliver, W.C., and Pharr, G.M., 1992. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. Journal of Materials Research, 7 (6), 1564–1583. https://doi.org/10.1557/JMR.1992.1564.
  • Pang, B., et al., 2022. Design of a ZnO@plant polyphenol/poly(vinyl alcohol) film via plant polyphenol-induced cross-linking and its enhanced UV shielding and antibacterial performance. ACS Sustainable Chemistry & Engineering, 10 (29), 9369–9380. https://doi.org/10.1021/acssuschemeng.2c01444.
  • Papadopoulos, A.N., et al., 2019. Nanomaterials and chemical modifications for enhanced key wood properties: a review. Nanomaterials, 9 (4), 607. https://doi.org/10.3390/nano9040607.
  • Poubel, D.da S., et al., 2017. Effect of ZnO nanoparticles on UV resistance of the heat-treated pine wood. Scientia Forestalis, 45 (113), 49–62. https://doi.org/10.18671/scifor.v45n113.05.
  • Reh, R., Kristak, L., and Antov, P., 2022. Advanced eco-friendly wood-based composites. Materials, 15 (23), Article 23. https://doi.org/10.3390/ma15238651.
  • Ruppi, S., Larsson, A., and Flink, A., 2008. Nanoindentation hardness, texture and microstructure of α-Al2O3 and κ-Al2O3 coatings. Thin Solid Films, 516 (18), 5959–5966. https://doi.org/10.1016/j.tsf.2007.10.078.
  • Salla, J., Pandey, K.K., and Srinivas, K., 2012. Improvement of UV resistance of wood surfaces by using ZnO nanoparticles. Polymer Degradation and Stability, 97 (4), 592–596. https://doi.org/10.1016/j.polymdegradstab.2012.01.013.
  • Smijs, T.G., and Pavel, S., 2011. Titanium dioxide and zinc oxide nanoparticles in sunscreens: focus on their safety and effectiveness. Nanotechnology, Science and Applications, 4, 95–112. https://doi.org/10.2147/NSA.S19419.
  • Sunar, T., and Ozyurek, D., 2022. Effect of Al2O3 nanoparticles as reinforcement on the wear properties of A356/Al2O3 nanocomposites produced by powder metallurgy. Journal of Tribology-Transactions of the ASME, 144 (8), 081701. https://doi.org/10.1115/1.4053628.
  • Ullah, I., et al., 2022. Growth and characterization of Ag-Al2O3 composites thin films for thermoelectric power generation applications. Ceramics International, 48 (3), 3647–3651. https://doi.org/10.1016/j.ceramint.2021.10.145.
  • Wan, C., Jiao, Y., and Li, J., 2017. A cellulose fibers-supported hierarchical forest-like cuprous oxide/copper array architecture as a flexible and free-standing electrode for symmetric supercapacitors. Journal of Materials Chemistry A, 5 (33), 17267–17278. https://doi.org/10.1039/c7ta04994c.
  • Wang, Y., et al., 2021a. Hydrophobic and UV-resistant properties of environmentally friendly nano-ZnO-coated wood. Holzforschung, 75 (2), 138–147. https://doi.org/10.1515/hf-2019-0312.
  • Wang, Y., et al., 2021b. Magnetron sputtering construction of nano-Al metallized wood and Its functional research. Forests, 12 (11), Article 11. https://doi.org/10.3390/f12111564.
  • Xia, P., et al., 2022. Formation mechanism of TiC-Al2O3 ceramic reinforcements and the influence on the property of ZL101 composites. Ceramics International, 48 (2), 2577–2584. https://doi.org/10.1016/j.ceramint.2021.10.040.
  • Xiao, Z., et al., 2023. Functional improvement of fast-growing wood based on nano-ZnO/PDMS double-layer structure. Wood Science and Technology, 57 (1), 275–288. https://doi.org/10.1007/s00226-022-01441-7.
  • Yang, S., et al., 2023. Organic-inorganic hybrid material containing silica-alumina sol and ether polymer for flame retardant wood with decay resistance and excellent mechanical properties. Journal of Building Engineering, 73, 106676. https://doi.org/10.1016/j.jobe.2023.106676.
  • Yao, Q., et al., 2016. One-step solvothermal deposition of ZnO nanorod arrays on a wood surface for robust superamphiphobic performance and superior ultraviolet resistance. Scientific Reports, 6, 35505. https://doi.org/10.1038/srep35505.
  • Yi, T., and Morrell, J.J., 2023. Role of α/γ Fe2O3 and ZnO nano-particles in reducing photodegradation of wood components. Wood Science and Technology, 57 (2), 427–446. https://doi.org/10.1007/s00226-023-01456-8.
  • Zelinka, S.L., et al., 2022. Review of wood modification and wood functionalization technologies. Forests, 13 (7), Article 7. https://doi.org/10.3390/f13071004.
  • Zhang, X., et al., 2022. Fabrication of ionic wood crosslinked by Ca2+ thorn with high strength, toughness, and weather resistance. Journal of Materials Research and Technology, 21, 5045–5055. https://doi.org/10.1016/j.jmrt.2022.11.097.
  • Zhang, Z., Liu, Y., and Liu, H., 2022. Mechanical properties and microstructure of spark plasma sintered Al2O3-SiCw-Si3N4 composite ceramic tool materials. Ceramics International, 48 (4), 5527–5534. https://doi.org/10.1016/j.ceramint.2021.11.097.

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