AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (1.9 MB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Open Access

Transparent Photochromic Wood Composites Incorporating AgBr Nanoparticles for UV-shielding Applications

Cong ZhangYujun MaTao Lin( )Xuefeng YinXiaoyao WeiZhongxiang Wang
National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi Provincial Key Laboratory of Papermaking Technology and Specialty Paper Development, Key Laboratory of Paper based Functional Materials of China National Light Industry, College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology, Xi'an, Shaanxi Province, 710021, China
Show Author Information

Abstract

Transparent wood (TW) is a wood-based biomaterial with several advantages, such as high optical transmittance, low thermal conductivity, and tunable haze. TW is functionalized according to its transparency to broaden its applications in different fields. Several studies have examined wood functionalization in recent years; however, few studies have reported photochromic TW (PTW) for ultraviolet (UV) -shielding window applications. Herein, PTW was obtained by infiltrating the delignified wood template with photochromic silver bromide (AgBr) nanoparticles and a pre-polymerized methyl methacrylate (MMA) mixture solution. The obtained PTW can adjust the luminous flux on change in the color in the visible light region. The photochromic properties were examined, and the optical properties of the composites were characterized using UV-Vis spectrophotometry. Light transmittance of PTW was up to 86.5% at 800 nm before UV irradiation, and it decreased to 70.1% at 800 nm after UV irradiation, as the wood color changed from colorless to dark purple under UV irradiation. Thus, this work not only achieves high-value utilization of wood, but also produces a new material that can be used in varied fields, such as UV-shielding, energy saving, and smart building.

References

[1]

Chu Z, Feng Y, Seeger S. Oil/water Separation with Selective Superantiwetting/superwetting Surface Materials. Angewandte Chemie International Edition, 2015, 54(8), 2328-2338.

[2]

Zhang W, Liu N, Cao Y, Lin X, Liu Y, Feng L. Superwetting Porous Materials for Wastewater Treatment: from Immiscible Oil/water Mixture to Emulsion Separation. Advanced Materials Interfaces, 2017, DOI: 10.1002/admi.201700029.

[3]

Selvakumar M, Pawar H S, Francis N K, Das B, Dhara S, Chattopadhyay S. Excavating the Role of Aloe Vera Wrapped Mesoporous Hydroxyapatite Frame Ornamentation in Newly Architectured Polyurethane Scaffolds for Osteogenesis and Guided Bone Regeneration with Microbial Protection. ACS Applied Materials & Interfaces, 2016, 8(9), 5941-5960.

[4]

Cabane E, Keplinger T, Künniger T, Merk V, Burgert I. Functional Lignocellulosic Materials Prepared by ATRP from a Wood Scaffold. Scientific Reports, 2016, 6(1), 1-10.

[5]

Wang Y, Sun G, Dai J, Chen G, Morgenstern J, Wang Y, Kang S, Zhu M, Das S, Cui L, et al. A High-performance, Low-tortuosity Wood-carbon Monolith Reactor. Advanced Materials, 2017, DOI: 10.1002/adma.201604257.

[6]

Iwamoto S, Nakagaito A N, Yano H, Nogi M. Optically Transparent Composites Reinforced with Plant Fiber-based Nanofibers. Applied Physics A, 2005, 81(6), 1109-1112.

[7]

Jiang F, Li T, Li Y, Zhang Y, Gong A, Dai J, Hitz E, Luo W, Hu L. Wood-based Nanotechnologies Toward Sustainability. Advanced Materials, 2018, DOI: 10.1002/adma.201703453.

[8]

Deka M, Saikia C N. Chemical Modification of Wood with Thermosetting Resin: Effect on Dimensional Stability and Strength Property. Bioresource Technology, 2000, 73(2), 179-181.

[9]

Zhu M, Song J, Li T, Gong A, Wang Y, Dai J, Yao Y, Luo W, Henderson D, Hu L. Highly Anisotropic, Highly Transparent Wood Composites. Advanced Materials, 2016, 28(26), 5181-5187.

[10]

Gan W, Xiao S, Gao L, Gao R, Li J, Zhan X. Luminescent and Transparent Wood Composites Fabricated by Poly (methyl methacrylate) and γ-Fe2O3@YVO4∶Eu3+ nanoparticle Impregnation. ACS Sustainable Chemistry & Engineering, 2017, 5(5), 3855-3862.

[11]

Bi Z, Li T, Su H, Ni Y, Yan L. Transparent Wood Film Incorporating Carbon Dots as Encapsulating Material for White Light-emitting Diodes. ACS Sustainable Chemistry & Engineering, 2018, 6(7), 9314-9323.

[12]

Chen F, Gong A S, Zhu M, Chen G, Lacey S D, Jiang F, Li Y, Wang Y, Dai J, Yao Y, et al. Mesoporous, Three-dimensional Wood Membrane Decorated with Nanoparticles for Highly Efficient Water Treatment. ACS Nano, 2017, 11(4), 4275-4282.

[13]

Qiu Z, Xiao Z, Gao L, Li J, Wang H, Wang Y, Xie Y. Transparent Wood Bearing a Shielding Effect to Infrared Heat and Ultraviolet Via Incorporation of Modified Antimony-doped Tin Oxide Nanoparticles. Composites Science and Technology, 2019, 172, 43-48.

[14]

Wan J, Song J, Yang Z, Kirsch D, Jia C, Xu R, Dai J, Zhu M, Xu L, Chen C, et al. Highly Anisotropic Conductors. Advanced Materials, 2017, DOI: 10.1002/adma.201703331.

[15]

Chen C, Zhang Y, Li Y, Dai J, Song J, Yao Y, Gong Y, Kierzewski I, Xie J, Hu L. All-wood, Low Tortuosity, Aqueous, Biodegradable Supercapacitors with Ultra-high Capacitance. Energy & Environmental Science, 2017, 10 (2), 538-545.

[16]

Burgert I, Cabane E, Zollfrank C, Berglund L. Bio-inspired Functional Wood-based Materials—Hybrids and Replicates. International Materials Reviews, 2015, 60(8), 431-450.

[17]

Rao A N S, Nagarajappa G B, Nair S, Chathoth A M, Pandey K K. Flexible Transparent Wood Prepared from Poplar Veneer and Polyvinyl Alcohol. Composites Science and Technology, 2019, DOI: 10.1016/j.compscitech.2019.107719.

[18]

Okahisa Y, Yoshida A, Miyaguchi S, Yano H. Optically Transparent Wood-cellulose Nanocomposite as a Base Substrate for Flexible Organic Light-emitting Diode Displays. Composites Science and Technology, 2009, 69(11-12), 1958-1961.

[19]

Zhu M, Li T, Davis C S, Yao Y, Dai J, Wang Y, AlQatari F, Gilman J W, Hu L. Transparent and Haze Wood Composites for Highly Efficient Broadband Light Management in Solar Cells. Nano Energy, 2016, 26, 332-339.

[20]

Fu Q, Yan M, Jungstedt E, Yang X, Li Y, Berglund L A. Transparent Plywood as a Load-bearing and Luminescent Biocomposite. Composites Science and Technology, 2018, 164, 296-303.

[21]

Keplinger T, Cabane E, Berg J K, Segmehl J S, Bock P, Burgert I. Smart Hierarchical Bio-based Materials by Formation of Stimuli-responsive Hydrogels inside the Microporous Structure of Wood. Advanced Materials Interfaces, 2016, DOI: 10.1002/admi.201600233.

[22]

Jia C, Chen C, Mi R, Li T, Dai J, Yang Z, Pei Y, He S, Bian H, Jang S H, et al. Clear Wood Toward High-performance Building Materials. ACS Nano, 2019, 13(9), 9993-10001.

[23]

Yaddanapudi H S, Hickerson N, Saini S, Tiwari A. Fabrication and Characterization of Transparent Wood for Next Generation Smart Building Applications. Vacuum, 2017, 146, 649-654.

[24]

Wang X, Zhan T, Liu Y, Shi J, Pan B, Zhang Y, Cai L, Shi S Q. Large-Size Transparent Wood for Energy-Saving Building Applications. ChemSusChem, 2018, 11(23), 4086-4093.

[25]

Li T, Zhu M, Yang Z, Song J, Dai J, Yao Y, Luo W, Pastel G, Yang B, Hu L. Wood Composite as an Energy Efficient Building Material: Guided Sunlight Transmittance and Effective Thermal Insulation. Advanced Energy Materials, 2016, DOI: 10.1002/aenm.201601122.

[26]

Gan W, Gao L, Xiao S, Zhang W, Zhan X, Li J. Transparent Magnetic Wood Composites Based on Immobilizing Fe3O4 Nanoparticles into a Delignified Wood Template. Journal of Materials Science, 2017, 52(6), 3321-3329.

[27]

Tang Q, Lu F, Wang Y F, Miao Z, Guo W. Anisotropic Flexible Transparent Films from Remaining Wood Microstructures for Screen Protection and AgNW Conductive Substrate. Nanoscale, 2018, 10(9), 4344-4353.

[28]

Lang A W, Li Y, de Keersmaecker M, Shen D E, Österholm A M, Berglund L, Reynolds J R. Transparent Wood Smart Windows: Polymer Electrochromic Devices Based on Poly (3, 4-Ethylenedioxythiophene)∶ Poly(Styrene Sulfonate) Electrodes. ChemSusChem, 2018, 11(5), 854-863.

[29]

Yu Z, Yao Y, Yao J, Zhang L, Chen Z, Gao Y, Luo H. Transparent Wood Containing CsxWO3 Nanoparticles for Heat-shielding Window Applications. Journal of Materials Chemistry A, 2017, 5(13), 6019-6024.

[30]

Shirif M A, Medhat M, El-Zaiat S Y, Fayad A M, Moustafa F A. Optical Properties of Silver Halide Photochromic Glasses Doped with Cobalt Oxide. Silicon, 2018, 10(2), 219-227.

Paper and Biomaterials
Pages 21-29
Cite this article:
Zhang C, Ma Y, Lin T, et al. Transparent Photochromic Wood Composites Incorporating AgBr Nanoparticles for UV-shielding Applications. Paper and Biomaterials, 2021, 6(4): 21-29. https://doi.org/10.1213/j.issn.2096-2355.2021.04.003

822

Views

120

Downloads

0

Crossref

1

Scopus

Altmetrics

Received: 13 May 2021
Accepted: 22 June 2021
Published: 25 October 2021
© 2021 Paper and Biomaterials

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)

Return