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Mitigating the electromagnetic radiation by coupling use of waste cathode-ray tube glass and graphene oxide on cement composites

DOI:10.1016/j.compositesb.2018.12.050 期刊:Composites Part B: Engineering 出版年份:2019 更新时间:2025-09-23 15:23:52
摘要: With technological development, the rapid growing numbers of electronic devices generate severe electromagnetic interference (EMI) and radiation to human environment. In this study, the coupling effect of graphene oxide (GO) addition (up to 0.10 wt.% of cement) and waste cathode-ray tube (CRT) glass replacement for fine aggregates (30 and 60 wt.%) in cement-based composites on mitigating EMI was studied. The electric permittivity obtained using a decoupling method was applied for evaluating the EMI shielding capacity of cement-based composites, while direct current (DC) electrical resistance measurement is conducted using four-probe method. The DC electrical resistivity of specimens increases insignificantly with increasing in GO content, but remarkably with increasing CRT glass content from 30 to 60 wt.%. The 60 wt.% replacement of waste CRT glass with 0.1 wt.% GO addition increases the relative permittivity by about 50% and 200% when the frequency is in the ranges of 104–5 × 106 Hz and 101–103 Hz, respectively. It is concluded that a significant increase in the permittivity can be obtained owing to the synergetic interaction between waste CRT glass and GO. The improvement in the EMI shielding ability of cement-based composites not only enables the applications of these composites in mitigating electromagnetic pollution, but also promotes large-volume recycling of toxic waste CRT glass.
作者: Wu-Jian Long,Yu-cun Gu,Hongyan Ma,Hao-dao Li,Feng Xing
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To investigate the coupling effect of graphene oxide (GO) addition and waste cathode-ray tube (CRT) glass replacement on mitigating electromagnetic interference (EMI) in cement-based composites.

The coupling use of waste CRT glass and graphene oxide significantly increases the electrical permittivity of cement-based composites, enhancing their EMI shielding ability. This synergy allows for effective mitigation of electromagnetic pollution and promotes the recycling of toxic waste CRT glass. Key findings include increased density with CRT glass replacement, slight changes in electrical resistivity with GO addition, and substantial permittivity improvements at specific frequencies.

The study uses a specific thickness for specimens that may affect the accuracy of permittivity measurements due to fringing electric field effects. The GO content is low and below the percolation threshold, limiting its impact on electrical conductivity. The research focuses on EMI shielding evaluation through permittivity and does not include direct EMI shielding effectiveness tests or long-term environmental impact assessments of waste CRT glass leaching.

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