Submitted:
30 August 2023
Posted:
01 September 2023
You are already at the latest version
Abstract

Keywords:
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Cracked Template with Peeled Cells Perimeter
2.3. Sputtering Silver Films on Cracked Template
2.4. Silver Micro Caps Purification, Selective Separation into Flakes and Ribbons
2.5. Silver Micro Caps Films Preparation
2.6. SEM, AFM and EDX Analysis of Silver Micro Caps, Silver Flakes and Silver Ribbons
2.7. XRD Analysis of Silver Micro Caps Films
2.8. Optical Transmittance and Sheet Resistance Measurements of Silver Meshes and Silver Micro Caps Films
2.9. Study EMI Shielding Properties of Silver Meshes and Silver Micro Caps Films
- 1)
- Special air coaxial cell with a diameter of of 16.00/6.95 mm (type II, 50 Ω, GOST RV 51914-2002). The measurements were carried out in the range of 10 MHz to 7 GHz; this frequency range includes the L (1-2 GHz), S (2-4 GHz) and C (4-8 GHz) bands, the ability to measure at low frequencies with a relatively simple and convenient measurement technique with good quality of results. The measurements were carried out on a Keysight FieldFox N9916A vector network analyzer (Keysight Technologies, Santa Rosa, CA, USA). The dynamic measurement range of the T is 80 dB and the measurement error is not worse ± 2 dB even on low signal level [44].
- 2)
- The measurement in a higher frequency region was carried out in the K band (18-26.5 GHz) and Ka band (26.5-40 GHz). The cross sections of the waveguide cell had a rectangular shape with dimensions of 4.3x10.65 mm for K band and 3.55x7.1 mm for Ka band. The test sample is placed in the break of the waveguide transmission line. The measurements were carried out on an R&S ZVA 50 vector network analyzer (Rohde & Schwarz GmbH & Co. KG, Munich, Bavaria, Germany) [37].
3. Results and Discussion
3.1.1. Morphology and Geometric Characteristics of the Cracked Template and Silver Meshes
3.1.2. Optoelectric Parameters of Silver Meshes
3.2.1. Morphology, Structural and Transport Studies Silver Micro Caps and Silver Micro Caps Films
3.2.2. Separation of Silver Micro Caps into Silver Flakes and Ribbons and Their Morphological Features
3.3. EMI Shielding Performance
3.3.1. Shielding and Reflecting Properties of Transparent Conductive Meshes Based on Cracked Template
3.3.2. Silver Micro Caps Films
4. Conclusion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
References
- Tong, C. (2022). EMI Shielding Materials and Absorbers for 5G Communications. In: Advanced Materials and Components for 5G and Beyond. Springer Series in Materials Science, vol 327. Springer, Cham. [CrossRef]
- Geetha, S.; Satheesh Kumar, K.K.; Rao, Chepuri, R.K.; Vijayan, M.; Trivedi, D.C. EMI Shielding: Methods and Materials—A Review. Journal of Applied Polymer Sci. 2009, 112, 2073–2086. [CrossRef]
- Wanasinghe, D.; Aslani, F. A review on recent advancement of electromagnetic interference shielding novel metallic materials and processes. Composites Part B: Engineering 2019, 176, 107207. [Google Scholar] [CrossRef]
- Choi, H.K.; Lee, A.; Park, M.; Lee, D.S.; Bae, S.; Lee, S.-K.; Lee, S.H.; Lee, T.; Kim, T.-W. Hierarchical Porous Film with Layer-by-Layer Assembly of 2D Copper Nanosheets for Ultimate Electromagnetic Interference Shielding. ACS Nano 2021, 15, 829–839. [Google Scholar] [CrossRef] [PubMed]
- Sahoo, R.; Sundara, R.; Venkatachalam, S. Silver Nanowires Coated Nitrocellulose Paper for High-Efficiency Electromagnetic Interference Shielding. ACS Omega 2022, 7, 41426–41436. [Google Scholar] [CrossRef] [PubMed]
- Kumar, R.; Sahoo, S.; Joanni, E.; Singh, R.K.; Tan, W.K.; Kar, K.K.; Matsuda, A. Recent progress on carbon-based composite materials for microwave electromagnetic interference shielding. Carbon 2021, 177, 304–331. [Google Scholar] [CrossRef]
- Yang, Y.; Gupta, M.C.; Dudley, K.L.; Lawrence, R.W. Novel Carbon Nanotube−Polystyrene Foam Composites for Electromagnetic Interference Shielding. Nano Lett. 2005, 5, 2131–2134. [Google Scholar] [CrossRef]
- Wan, Y.-J.; Zhu, P.-L.; Yu, S.-H.; Sun, R.; Wong, C.-P.; Liao, W.-H. Graphene paper for exceptional EMI shielding performance using large-sized graphene oxide sheets and doping strategy. Carbon 2017, 122, 74–81. [Google Scholar] [CrossRef]
- Munalli, D.; Dimitrakis, G.; Chronopoulos, D.; Greedy, S.A. Long Electromagnetic shielding effectiveness of carbon fibre reinforced composites. Composites Part B: Engineering 2019, 173, 106906. [Google Scholar] [CrossRef]
- Zhou, E.; Xi, J.; Guo, Y.; Liu, Y.; Xu, Z.; Peng, L.; Gao, W.; Ying, J.; Chen, Z.; Gao, C. Synergistic effect of graphene and carbon nanotube for high-performance electromagnetic interference shielding films. Carbon 2018, 133, 316–322. [Google Scholar] [CrossRef]
- Shahzad, F.; Alhabeb, M.; Hatter, C.B.; Anasori, B.; Hong, S.M.; Koo, C.M.; Gogotsi, Y. Electromagnetic interference shielding with 2D transition metal carbides (MXenes). Science 2016, 353, 1137–1140. [Google Scholar] [CrossRef]
- Iqbal, A.; Sambyal, P.C.; Koo, M. 2D MXenes for Electromagnetic Shielding: A Review. Adv. Funct. Mater. 2020, 30, 2000883. [Google Scholar] [CrossRef]
- Han, M.; Shuck, C.E.; Rakhmanov, R.; Parchment, D.; Anasori, B.; Koo, C.M.; Friedman, G.; Gogotsi, Y. Beyond Ti3C2Tx: MXenes for Electromagnetic Interference Shielding. ACS Nano 2020, 14, 5008–5016. [Google Scholar] [CrossRef] [PubMed]
- Li, Z.; Wang, Z.; Lu, W.; Hou, B. Theoretical Study of Electromagnetic Interference Shielding of 2D MXenes Films. Metals 2018, 8, 652. [Google Scholar] [CrossRef]
- Shukla,V. Review of electromagnetic interference shielding materials fabricated by iron ingredients. Nanoscale Adv. 2019, 1, 1640–1671. [Google Scholar] [CrossRef]
- Dong, J.; Ullal, R.; Han, J.; Wei, S.; Ouyang, X.; Donga, Gao, J.W. Partially crystallized TiO2 for microwave absorption. J. Mater. Chem. A 2015, 3, 5285–5288. [CrossRef]
- Maruthi, N.; Faisal, M.; Raghavendra, N. Conducting polymer based composites as efficient EMI shielding materials: A comprehensive review and future prospects. Synthetic Metals. 2021, 272, 116664. [Google Scholar] [CrossRef]
- Yun, T.; Kim, H.; Iqbal, A.; Cho, Y.S.; Lee, G.S.; Kim, M.-K.; Kim, S.J.; Kim, D.; Gogotsi, Y.; Kim, S.O.; Koo, C.M. Electromagnetic Shielding of Monolayer MXene Assemblies. Adv. Mater. 2020, 32, 1906769. [Google Scholar] [CrossRef]
- Wei, Z.; Huagang, X.; Shaokai, W.; Min, L.; Yizhuo, G. Electromagnetic characteristics of carbon nanotube film materials. Chinese Journal of Aeronautics. 2015, 28, 1245–1254. [Google Scholar] [CrossRef]
- Liang, C.; Gu, Z.; Zhang, Y.; Ma, Z.; Qiu, H.; Gu, J. Structural Design Strategies of Polymer Matrix Composites for Electromagnetic Interference Shielding: A Review. Nano-Micro Lett. 2021, 13, 181. [Google Scholar] [CrossRef]
- Wang, H.; Zheng, K.; Zhang, X.; Wang, Y.; Xiao, C.; Chen, L.; Tian, X. Hollow microsphere-infused porous poly(vinylidene fluoride)/multiwall carbon nanotube composites with excellent electromagnetic shielding and low thermal transport. J Mater Sci 2018, 53, 6042–6052. [Google Scholar] [CrossRef]
- Wanasinghe, D.; Aslani, F.; Ma, G.; Habibi, D. Review of Polymer Composites with Diverse Nanofillers for Electromagnetic Interference Shielding. Nanomaterials 2020, 10, 541. [Google Scholar] [CrossRef] [PubMed]
- Ha, J.-H.; Hong, S.-K.; Ryu, J.-K.; Bae, J.; Park, S.-H. Development of Multi-Functional Graphene Polymer Composites Having Electromagnetic Interference Shielding and De-Icing Properties. Polymers 2019, 11, 2101. [Google Scholar] [CrossRef] [PubMed]
- Ahmad, A.F.; Ab Aziz, S.; Abbas, Z.; Obaiys, S.J.; Khamis, A.M.; Hussain, I.R.; Zaid, M.H.M. Preparation of a Chemically Reduced Graphene Oxide Reinforced Epoxy Resin Polymer as a Composite for Electromagnetic Interference Shielding and Microwave-Absorbing Applications. Polymers 2018, 10, 1180. [Google Scholar] [CrossRef]
- Wang, Y.-Y.; Zhang, F.; Li, N.; Shi, J.-F.; Jia, L.-C.; Yan, D.-X.; Li, Z.-M. Carbon-based aerogels and foams for electromagnetic interference shielding: A review. Carbon 2023, 205, 10–26. [Google Scholar] [CrossRef]
- Zeng, Z.; Wu, T.; Han, D.; Ren, Q.; Siqueira, G.; Nyström, G. Ultralight, Flexible, and Biomimetic Nanocellulose/Silver Nanowire Aerogels for Electromagnetic Interference Shielding. ACS Nano 2020, 14, 2927–2938. [Google Scholar] [CrossRef] [PubMed]
- Du,Y.; Xu, J.; Fang, J.; Zhang, Y.; Liu, X.; Zuo, P.; Zhuang, Q. Ultralight, highly compressible, thermally stable MXene/aramid nanofiber anisotropic aerogels for electromagnetic interference shielding. J. Mater. Chem. A 2022, 10, 6690–6700. [CrossRef]
- Blachowicz, T.; Wójcik, D.; Surma, M.; Magnuski, M.; Ehrmann, G.; Ehrmann, A. Textile Fabrics as Electromagnetic Shielding Materials—A Review of Preparation and Performance. Fibers 2023, 11, 29. [Google Scholar] [CrossRef]
- Yao, B.; Xu, X.; Li, H.; Han, Z.; Hao, J.; Yang, G.; Xie, Z.; Chen, Y.; Liu, W.; Wang, Q.; Wang, H. Soft liquid-metal/elastomer foam with compression-adjustable thermal conductivity and electromagnetic interference shielding. Chemical Engineering Journal 2021, 410, 128288. [Google Scholar] [CrossRef]
- Luo, H.; Chen, F.; Wang, X.; Dai, W.; Xiong, Y.; Yang, J.; Gong, R. A novel two-layer honeycomb sandwich structure absorber with high-performance microwave absorption. Composites Part A: Applied Science and Manufacturing 2019, 119, 1–7. [Google Scholar] [CrossRef]
- Li, Q.; Bi, S.; Wang, X.; Song, J. Development and current situation of flexible and transparent EM shielding materials. J Mater Sc. Mater Electron 2021, 32, 25603–25630. [Google Scholar] [CrossRef]
- Liang, Z.; Zhao, Z.; Pu, M.; Luo, J.; Xie, X.; Wang, Y.; Guo, Y.; Ma, X.; Luo, X. Metallic nanomesh for high-performance transparent electromagnetic shielding. Opt. Mater. Express 2020, 10, 796. [Google Scholar] [CrossRef]
- Liang, Y.; Huang, X.; Wen, K.; Wu, Z.; Yao, L.; Pan, J.; Liu, W.; Liu, P. Metal Mesh-Based Infrared Transparent EMI Shielding Window with Balanced Shielding Properties over a Wide Frequency Spectrum. Appl. Sci. 2023, 13, 4846. [Google Scholar] [CrossRef]
- Osipkov, A.; Makeev, M.; Konopleva, E.; Kudrina, N.; Gorobinskiy, L.; Mikhalev, P.; Ryzhenko, D.; Yurkov, G. Optically Transparent and Highly Conductive Electrodes for Acousto-Optical Devices. Materials 2021, 14, 7178. [Google Scholar] [CrossRef] [PubMed]
- Chung, S.-I.; Kim, P.K.; Ha, T.-G.; Han, J.T. High-performance flexible transparent nanomesh electrodes. Nanotechnology, 2019, 30, 125301. [Google Scholar] [CrossRef]
- Han, Y.; Lin, J.; Liu, Y.; Fu, H.; Ma, Y.; Jin, P.; Tan, J. Crackle template based metallic mesh with highly homogeneous light transmission for high-performance transparent EMI shielding. Sci. Rep. 2016, 6, 25601. [Google Scholar] [CrossRef]
- Voronin, A.S.; Fadeev, Y.V.; Govorun, I.V.; Podshivalov, I.V.; Simunin, M.M.; Tambasov, I.A.; Karpova, D.V.; Smolyarova, T.E.; Lukyanenko, A.V.; Karacharov, A.A.; et al. Cu–Ag and Ni–Ag meshes based on cracked template as efficient transparent electromagnetic shielding coating with excellent mechanical performance. J. Mater. Sci. 2021, 56, 14741–14762. [Google Scholar] [CrossRef]
- Voronin, A.S.; Fadeev, Y.V.; Makeev, M.O.; Mikhalev, P.A.; Osipkov, A.S.; Provatorov, A.S.; Ryzhenko, D.S.; Yurkov, G.Y.; Simunin, M.M.; Karpova, D.V.; Lukyanenko, A.V.; Kokh, D.; Bainov, D.D.; Tambasov, I.A.; Nedelin, S.V.; Zolotovsky, N.A.; Khartov, S.V. Low Cost Embedded Copper Mesh Based on Cracked Template for Highly Durability Transparent EMI Shielding Films. Materials 2022, 15, 1449. [Google Scholar] [CrossRef]
- Hu, M.; Gao, J.; Dong, Y.; Li, K.; Shan, G.; Yang, S.; Li, R.K.-Y. Flexible Transparent PES/Silver Nanowires/PET Sandwich-Structured Film for High-Efficiency Electromagnetic Interference Shielding. Langmuir 2012, 28, 7101–7106. [Google Scholar] [CrossRef]
- Zhu, X.; Guo, A.; Yan, Z.; Qin, F.; Xu, J.; Ji, Y.; Kan, C. PET/Ag NW/PMMA transparent electromagnetic interference shielding films with high stability and flexibility. Nanoscale 2021, 13, 8067. [Google Scholar] [CrossRef]
- Khawaja, W.A.G.; Ozdemir, O.; Erden, F.; Guvenc, I.; Ezuma, M.; Kakishima, Y. Effect of Passive Reflectors for Enhancing Coverage of 28 GHz mmWave Systems in an Outdoor Setting. Proc. 2019 IEEE Radio and Wireless Symposium (RWS), January 2019. [CrossRef]
- Khawaja, W.; Ozdemir, O.; Yapici, Y.; Erden, F.; Ezuma, M.; Guvenc, I. Coverage Enhancement for NLOS mmWave Links Using Passive Reflectors. IEEE Open Journal of the Communications Society, 2020, 1, 263–281. [Google Scholar] [CrossRef]
- Anjinappa, C.K.; Ganesh, A.P.; Ozdemir, O.; Ridenour, K.; Khawaja, W.; Guvenc, ˙I.; Nomoto, H.; Ide, Y. Indoor Propagation Measurements with Transparent Reflectors at 28/39/120/144 GHz. Proc. 2022 IEEE International Conference on Communications Workshops (ICC Workshops), May 2022. [CrossRef]
- Voronin, A.S.; Fadeev, Y.V.; Ivanchenko, F.S.; Dobrosmyslov, S.S.; Makeev, M.O.; Mikhalev, P.A.; Osipkov, A.S.; Damaratsky, I.A.; Ryzhenko, D.S.; Yurkov, G.Y.; Simunin, M.M.; Volochaev, M.N.; Tambasov, I.A.; Nedelin, S.V.; Zolotovsky, N.A.; Bainov, D.D.; Khartov, S.V. Original concept of cracked template with controlled peeling of the cells perimeter for high performance transparent EMI shielding films. Surf. and Interfaces 2023, 38, 102793. [Google Scholar] [CrossRef]
- Voronin, A.S.; Simunin, M.M.; Fadeev, Y.V.; Ivanchenko, F.S.; Karpova, D.V.; Tambasov, I.A.; Khartov, S.V. Technological Basis of the Formation of Micromesh Transparent Electrodes by Means of a Self-Organized Template and the Study of Their Properties. Tech. Phys. Lett. 2019, 45, 366–369. [Google Scholar] [CrossRef]
- Voronin, A.S.; Fadeev, Y.V.; Dobrosmyslov, S.S.; Simunin, M.M.; Khartov, S.V. Random Ag mesh transparent heater obtained with a cracked template technique. J. Phys.: Conf. Ser. 2020, 1679, 042087. [Google Scholar] [CrossRef]
- Kiruthika, S.; Rao, K.D.M.; Kumar, A.; Gupta, R.; Kulkarni, G.U. Metal wire network based transparent conducting electrodes fabricated using interconnected crackled layer as template. Mater Res Express 2014, 1, 026301. [Google Scholar] [CrossRef]
- Kiruthika, S.; Gupta, R.; Rao, K.D.M.; Chakraborty, S.; Padmavathy, N.; Kulkarni, G.U. Large area solution processed transparent conducting electrode based on highly interconnected Cu wire network. J Mater Chem C 2014, 2, 2089–2094. [Google Scholar] [CrossRef]
- Han, Y.; Liu, Y.X.; Han, L.; Lin, J.; Jin, P. High-performance hierarchical graphene/metal-mesh film for optically transparent electromagnetic interference shielding. Carbon 2017, 115, 34–42. [Google Scholar] [CrossRef]
- Kim, Y.-g.; Tak, Y.J.; Park, S.P.; Kim, H.J.; Kim, H.J. Structural Engineering of Metal-Mesh Structure Applicable for Transparent Electrodes Fabricated by Self-Formable Cracked Template. Nanomaterials 2017, 7, 214. [Google Scholar] [CrossRef]
- Lee, H.B.; Jin, W.-Y.; Ovhal, M.M.; Kumar, N.; Kang, J.-W. Flexible transparent conducting electrodes based on metal meshes for organic optoelectronic device applications: a review. J Mater Chem C 2019, 7, 1087–1110. [Google Scholar] [CrossRef]
- Jung, J.; Lee, H.; Ha, I.; Cho, H.; Kim, K.K.; Kwon, J.; Won, P.; Hong, S.; Ko, S.H. Highly Stretchable and Transparent Electromagnetic Interference Shielding Film Based on Silver Nanowire Percolation Network for Wearable Electronics Applications. ACS Appl. Mater. Interfaces 2017, 9, 44609–44616. [Google Scholar] [CrossRef]
- Wu, H.; Kong, D.; Ruan, Z.; Hsu, P.-C.; Wang, S.; Yu, Z.; Carney, T.J.; Hu, L.; Fan, S.; Cui, Y. A transparent electrode based on a metal nanotrough network. Nature Nanotech 2013, 8, 421–425. [Google Scholar] [CrossRef]
- Deng, B.; Hsu, P.-C.; Chen, G.; Chandrashekar, B.N.; Liao, L.; Ayitimuda, Z.; Wu, J.; Guo, Y.; Lin, L.; Zhou, Y.; Aisijiang, M.; Xie, Q.; Cui, Y.; Liu, Z.; Peng, H. Roll-to-Roll Encapsulation of Metal Nanowires between Graphene and Plastic Substrate for High-Performance Flexible Transparent Electrodes. Nano Lett. 2015, 15, 4206–4213. [Google Scholar] [CrossRef] [PubMed]
- Jang, J.; Hyun, B.G.; Ji, S.; Cho, E.; An, B.W.; Cheong, W.H.; Park, J.-U. Rapid production of large-area, transparent and stretchable electrodes using metal nanofibers as wirelessly operated wearable heaters. NPG Asia Mater. 2017, 9, e432. [Google Scholar] [CrossRef]
- Kim, H.-J.; Kim, Y.; Jeong, J.-H.; Choi, J.-H.; Lee, J.; Choi, D.-G. A cupronickel-based micromesh film for use as a high-performance and low-voltage transparent heater. J. Mater. Chem. A 2015, 3, 16621–16626. [Google Scholar] [CrossRef]
- Bae, S.; Kim, H.; Lee, Y.; Xu, X.F.; Park, J.S.; Zheng, Y.; Balakrishnan, J.; Lei, T.; Kim, H.R.; Song, Y.I.; Kim, Y.J.; Kim, K.S.; Ozyilmaz, B.; Ahn, J.H.; Hong, B.H.; Iijima, S. Roll-to-roll production of 30-inch graphene films for transparent electrodes. Nat Nanotechnol. 2010, 5, 574–578. [Google Scholar] [CrossRef] [PubMed]
- Tian, Y.; Guo, N.; Wang, W.-Y.; Geng, W.; Jing, L.-C.; Wang, T.; Yuan, X.-T.; Zhu, Z.; Ma, Y.; Geng, H.-Z. Bilayer and three dimensional conductive network composed by SnCl2 reduced rGO with CNTs and GO applied in transparent conductive films. Sci Rep, 2021, 11, 9891. [Google Scholar] [CrossRef] [PubMed]
- Wang, H.; Yang, W.; Liab, K.; Li, G. The hydrothermal synthesis of ultra-high aspect ratio Ag nanoflakes and their performance as conductive fillers in heaters and pastes. RSC Adv. 2018, 8, 8937. [Google Scholar] [CrossRef]
- Rosen, Y.; Marrach, R.; Gutkin, V.; Magdassi, S. Thin Copper Flakes for Conductive Inks Prepared by Decomposition of Copper Formate and Ultrafine Wet Milling. Adv Mater Technol 2019, 4, 1800426. [Google Scholar] [CrossRef]
- Liu, H.; Tang, H.; Fang, M.; Si, W.; Zhang, Q.; Huang, Z.; Gu, L.; Pan, W.; Yao, J.; Nan, C.; Wu, H. 2 D Metals by Repeated Size Reduction. Adv.Mater. 2016, 28, 8170–8176. [Google Scholar] [CrossRef]
- Haneef, M.; Yaqoob, K.; Adeel Umer, M.; Hussain, Z. A novel strategy for synthesis of Al powder comprising of Al nanoflakes via ultrasonication of Al foil. [CrossRef]
- Wang, T.; Park, M.; He, Q.; Ding, Z.; Yu, Q.; Yang, Y. Low-Cost Scalable Production of Freestanding Two-Dimensional Metallic Nanosheets by Polymer Surface Buckling Enabled Exfoliation. Cell Reports Physical Sci. 2020, 1, 100235. [Google Scholar] [CrossRef]
- Shiriaev, P.; Makeev, M.; Ryzhenko, D.; Popkov, O. Theoretical study of electromagnetic and optical properties of periodic conductive networks based on Voronoi diagrams. Materials Today: Proceedings 2019, 19, 2179–2182. [Google Scholar] [CrossRef]
- Ban, C.; Wang, X.; Zhou, Z.; Mao, H.; Cheng, S.; Zhang, Z.; Liu, Z.; Li, H.; Liu, J.; Huang, W. A Universal Strategy for Stretchable Polymer Nonvolatile Memory via Tailoring Nanostructured Surfaces. Sci Rep 2019, 9, 10337. [Google Scholar] [CrossRef] [PubMed]
- Sarycheva, A.; Polemi, A.; Liu, Y.; Dandekar, K.; Anasori, B.; Gogotsi, Y. 2D titanium carbide (MXene) for wireless communication. Sci. Adv. 2018, 4, eaau0920. [Google Scholar] [CrossRef]
- Voronin, A.S.; Fadeev, Y.V.; Govorun, I.V.; Voloshin, A.S.; Tambasov, I.A.; Simunin, M.M.; Khartov, S.V. A Transparent Radio Frequency Shielding Coating Obtained Using a Self-Organized Template. Tech. Phys. Lett. 2021, 47, 31–34. [Google Scholar] [CrossRef]
- Wang, H.; Lu, Z.; Tan, J. Generation of uniform diffraction pattern and high EMI shielding performance by metallic mesh composed of ring and rotated sub-ring arrays. OPTICS EXPRESS 2016, 24, 22990. [Google Scholar] [CrossRef]
- Maniyara, R.A.; Mkhitaryan, V.K.; Chen, T.L.; Ghosh, D.S.; Pruneri, V. An antireflection transparent conductor with ultralow optical loss (<2%) and electrical resistance (<6 Ω sq–1). Nat. Commun. 2016, 7, 13771. [Google Scholar] [CrossRef]
- Zhang, X.; Zhong, Y.; Yan, Y. Electrical, Mechanical, and Electromagnetic Shielding Properties of Silver Nanowire-Based Transparent Conductive Films. Phys. Status Solidi A 2018, 215, 1800014. [Google Scholar] [CrossRef]
- Zhang, N.; Wang, Z.; Song, R.; Wang, Q.; Chen, H.; Zhang, B.; Lv, H.; Wu, Z.; He, D. Flexible and transparent graphene/silver-nanowires composite film for high electromagnetic interference shielding effectiveness. Sci. Bull. 2019, 64, 540–546. [Google Scholar] [CrossRef] [PubMed]
- Kim, D.-H.; Kim, Y.; Kim, J.-W. Transparent and flexible film for shielding electromagnetic interference. Mater. Design. 2016, 89, 703–707. [Google Scholar] [CrossRef]
- Jia, L.-C.; Zhou, C.-G.; Sun, W.-J.; Xu, L.; Yan, D.-X.; Li, Z.-M. Water-based Conductive Ink for Highly Efficient Electromagnetic Interference Shielding Coating. Chemical Engineering Journal 2020, 384, 123368. [Google Scholar] [CrossRef]
- Jia, Y.; Sun, R.; Pan, Y.; Wang, X.; Zhai, Z.; Min, Z.; Zheng, G.; Liu, C.; Shen, C.; Liu, X. Flexible and thin multifunctional waterborne polyurethane/Ag film for high-efficiency electromagnetic interference shielding, electro-thermal and strain sensing performances. Composites Part B: Engineering 2021, 210, 108668. [Google Scholar] [CrossRef]
- Ji, H.; Zhao, R.; Zhang, N.; Jin, C.; Lu, X.; Wang, C. Lightweight and flexible electrospun polymer nanofiber/metal nanoparticle hybrid membrane for high-performance electromagnetic interference shielding. NPG Asia Materials 2018, 10, 749–760. [Google Scholar] [CrossRef]
- Zou, K.; Sun, H.; Li, X.; Yi, S.; Li, J.; Zhou, Z.; Wang, H.; Yan, D.-X. Extreme environment-bearable polyimide film with a three-dimensional Ag microfiber conductive network for ultrahigh electromagnetic interference shielding. Science China Materials 2023, 66, 1578–1586. [Google Scholar] [CrossRef]
- Wan, Y.-J.; Wang, X.-Y.; Li, X.-M.; Liao, S.-Y.; Lin, Z.-Q.; Hu, Y.-G.; Zhao, T.; Zeng, X.-L.; Li, C.-H.; Yu, S.-H.; Zhu, P.-L.; Sun, R.; Wong, C.-P. Ultrathin Densified Carbon Nanotube Film with “Metal-like” Conductivity, Superior Mechanical Strength, and Ultrahigh Electromagnetic Interference Shielding Effectiveness. ACS Nano 2020, 14, 14134–14145. [Google Scholar] [CrossRef] [PubMed]
- Xing, D.; Lu, L.; Xie, Y.; Tang, Y.; The, K.S. Highly flexible and ultra-thin carbon-fabric/Ag/waterborne polyurethane film for ultra-efficient EMI shielding. Materials & Design 2020, 185, 108227. [Google Scholar] [CrossRef]
- Yang, R.; Gui, X.; Yao, L.; Hu, Q.; Yang, L.; Zhang, H.; Yao, Y.; Mei, H.; Tang, Z. Ultrathin, Lightweight, and Flexible CNT Buckypaper Enhanced Using MXenes for Electromagnetic Interference Shielding. Nano-Micro Lett. 2021, 13, 66. [Google Scholar] [CrossRef]












| Type of silver mesh | p, µm | w, µm | FF, % |
| M-100 | 75.8 | 6.5 | 16.5 |
| M-300 | 74.4 | 6.7 | 17.2 |
| M-600 | 75.3 | 7.13 | 18.1 |
| T-100 | 77.6 | 6.4 | 15.9 |
| T-300 | 76.2 | 6.6 | 16.6 |
| T-600 | 75.5 | 6.9 | 17.5 |
| Label | M-100 | T-100 | M-600 | T-600 |
|---|---|---|---|---|
| Sp. Gr. | Fm-3m | Fm-3m | Fm-3m | Fm-3m |
| a (Å) | 4.04938 (7) | 4.04909 (6) | 4.04955 (7) | 4.05083 (8) |
| V (Å3) | 66.400 (3) | 66.385 (3) | 66.408 (3) | 66.471 (4) |
| 2θ-interval, º | 10-90 | 10-90 | 10-90 | 10-90 |
| Rwp ,% | 11.63 | 10.89 | 11.91 | 12.08 |
| Rp ,% | 7.79 | 7.72 | 8.49 | 8.39 |
| RB ,% | 0.98 | 0.79 | 1.20 | 1.19 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).