Highly Thermal Conductive and Electromagnetic Shielding Polymer Nanocomposites from Waste Masks
Article
Article Title | Highly Thermal Conductive and Electromagnetic Shielding Polymer Nanocomposites from Waste Masks |
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ERA Journal ID | 213738 |
Article Category | Article |
Authors | Zhang, Xilin, Luo, Wenlong, Chen, Yanqiu, Guo, Qinghua, Luo, Jing, Burey, Paulomi, Gao, Yangyang, Lu, Yonglai, Gao, Qiang, Li, Jingchao, Li, Jianzhang and Song, Pingan |
Journal Title | Nano-Micro Letters |
Journal Citation | 17 |
Article Number | 263 |
Number of Pages | 15 |
Year | 2025 |
Publisher | SpringerOpen |
Place of Publication | Germany |
ISSN | 2150-5551 |
2311-6706 | |
Digital Object Identifier (DOI) | https://doi.org/10.1007/s40820-025-01796-z |
Web Address (URL) | https://link.springer.com/article/10.1007/s40820-025-01796-z |
Abstract | Over 950 billion (about 3.8 million tons) masks have been consumed in the last four years around the world to protect human beings from COVID-19 and air pollution. However, very few of these used masks are being recycled, with the majority of them being landfilled or incinerated. To address this issue, we propose a repurposing upcycling strategy by converting these polypropylene (PP)-based waste masks to high-performance thermally conductive nanocomposites (PP@G, where G refers to graphene) with exceptional electromagnetic interference shielding property. The PP@G is fabricated by loading tannic acid onto PP fibers via electrostatic self-assembling, followed by mixing with graphene nanoplatelets (GNPs). Because this strategy enables the GNPs to form efficient thermal and electrical conduction pathways along the PP fiber surface, the PP@G shows a high thermal conductivity of 87 W m⁻1 K⁻1 and exhibits an electromagnetic interference shielding effectiveness of 88 dB (1100 dB cm−1), making it potentially applicable for heat dissipation and electromagnetic shielding in advanced electronic devices. Life cycle assessment and techno-economic assessment results show that our repurposing strategy has significant advantages over existing methods in reducing environmental impacts and economic benefits. This strategy offers a facile and promising approach to upcycling/repurposing of fibrous waste plastics. |
Keywords | Mask waste; Repurposing; Thermal conductivity; Electromagnetic interference shielding; Life cycle assessment |
Contains Sensitive Content | Does not contain sensitive content |
ANZSRC Field of Research 2020 | 401699. Materials engineering not elsewhere classified |
330314. Sustainable design | |
401102. Environmentally sustainable engineering | |
Byline Affiliations | Beijing Forestry University, China |
Nanjing Forestry University, China | |
School of Agriculture and Environmental Science | |
Centre for Future Materials | |
Beijing University of Chemical Technology, China |
https://research.usq.edu.au/item/zywx3/highly-thermal-conductive-and-electromagnetic-shielding-polymer-nanocomposites-from-waste-masks
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