Vacuum-Compatible Electrode-Free Poling of PVDF Films Using Glow-Discharge Plasma
Abstract
1. Introduction
2. Materials and Methods
2.1. Samples
2.2. Glow-Discharge Plasma Poling Methodology
2.3. Characterization Methods
2.3.1. Piezoelectric Measurements
2.3.2. Water Contact-Angle Measurements
2.3.3. FTIR Spectroscopy
2.3.4. Piezoresponse Force Microscopy
2.3.5. Differential Scanning Calorimetry
2.3.6. UV–Vis–NIR Spectrophotometry
3. Results
3.1. Piezoelectric Properties
3.2. Fourier Transform Infrared Spectroscopy
3.3. DSC Results and Crystallinity
3.4. Scanning Probe Microscopy
3.5. Optical Properties
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Fukada, E.; Takashita, S. Piezoelectric Effect in Polarized Poly(vinylidene fluoride). Jpn. J. Appl. Phys. 1969, 8, 960. [Google Scholar] [CrossRef]
- Kawai, H. The Piezoelectricity of Poly(vinylidene fluoride). Jpn. J. Appl. Phys. 1969, 8, 975–976. [Google Scholar] [CrossRef]
- Kochervinskii, V.V. The Properties and Applications of Fluorine-Containing Polymer Films with Piezo- and Pyro-Activity. Russ. Chem. Rev. 1994, 63, 367–371. [Google Scholar] [CrossRef]
- Klyshnikov, K.Y.; Rezvova, M.A.; Belikov, N.V.; Glushkova, T.V.; Ovcharenko, E.A. Enhancing Decellularized Vascular Scaffolds with PVDF and PCL Reinforcement: A Fused Deposition Modeling Approach. Front. Cardiovasc. Med. 2023, 10, 1257812. [Google Scholar] [CrossRef] [PubMed]
- Zhang, S.; Liu, K.; Xu, M.; Shen, H.; Chen, K.; Feng, B.; Shen, S. Investigation of the 2312 Flexoelectric Coefficient Component of Polyvinylidene Fluoride: Deduction, Simulation, and Mensuration. Sci. Rep. 2017, 7, 3134. [Google Scholar] [CrossRef] [PubMed]
- Xin, W.; He, Z.; Zhao, C. Design and Experimental Evaluation of a Dual-Cantilever Piezoelectric Film Sensor with a Broadband Response and High Sensitivity. Micromachines 2023, 14, 2108. [Google Scholar] [CrossRef] [PubMed]
- Wang, S.; Wang, Y.; Wang, Z.; Wu, Z.; Xin, Y.; Zhou, X. A Brief Review on Hydrophone Based on PVDF Piezoelectric Film. Ferroelectrics 2023, 603, 150–156. [Google Scholar] [CrossRef]
- Parlato, S.; Centracchio, J.; Cinotti, E.; Gargiulo, G.D.; Esposito, D.; Bifulco, P.; Andreozzi, E. A Flexible PVDF Sensor for Forcecardiography. Sensors 2025, 25, 1608. [Google Scholar] [CrossRef] [PubMed]
- Bok, T.; Hysi, E.; Kolios, M.C. Quantitative Ultrasound and Photoacoustic Assessments of Red Blood Cell Aggregation in the Human Radial Artery. Photoacoustics 2025, 43, 100711. [Google Scholar] [CrossRef] [PubMed]
- Fang, C.; Hu, H.; Zou, J. A Focused Optically Transparent PVDF Transducer for Photoacoustic Microscopy. IEEE Sens. J. 2020, 20, 2313–2319. [Google Scholar] [CrossRef]
- Subochev, P.V.; Deán-Ben, X.L.; Chen, Z.; Prudnikov, M.B.; Vorobev, V.A.; Kurnikov, A.A.; Orlova, A.G.; Postnikova, A.S.; Kharitonov, A.V.; Proyavin, M.D.; et al. Ultrawideband High Density Polymer-Based Spherical Array for Real-Time Functional Optoacoustic Micro-Angiography. Light Sci. Appl. 2025, 14, 239. [Google Scholar] [CrossRef] [PubMed]
- Fiorillo, A.; Dario, P.; Van der Spiegel, J.; Domenici, C.; Foo, J. Spinned P(VDF-TrFE) Copolymer Layer for a Silicon-Piezoelectric Integrated US Transducer. In Proceedings of the IEEE Ultrasonics Symposium, Denver, CO, USA, 14–16 October 1987; pp. 667–670. [Google Scholar] [CrossRef]
- Takahashi, S.; Ohigashi, H. Ultrasonic Imaging Using Air-Coupled P(VDF/TrFE) Transducers at 2 MHz. Ultrasonics 2009, 49, 495–498. [Google Scholar] [CrossRef] [PubMed]
- Ranjan, A.; Peng, C.; Wagle, S.; Melandsø, F.; Habib, A. High-Frequency Acoustic Imaging Using Adhesive-Free Polymer Transducer. Polymers 2021, 13, 1462. [Google Scholar] [CrossRef] [PubMed]
- O’Reilly, M.A.; Hynynen, K. A PVDF Receiver for Ultrasound Monitoring of Transcranial Focused Ultrasound Therapy. IEEE Trans. Biomed. Eng. 2010, 57, 2286–2294. [Google Scholar] [CrossRef] [PubMed]
- Ahbab, N.; Naz, S.; Xu, T.B.; Zhang, S. A Comprehensive Review of Piezoelectric PVDF Polymer Fabrications and Characteristics. Micromachines 2025, 16, 386. [Google Scholar] [CrossRef] [PubMed]
- Li, M.; Katsouras, I.; Piliego, C.; Glasser, G.; Lieberwirth, I.; Blom, P.W.M.; de Leeuw, D.M. Controlling the Microstructure of Poly(vinylidene-fluoride) (PVDF) Thin Films for Microelectronics. J. Mater. Chem. C 2013, 1, 7695–7702. [Google Scholar] [CrossRef]
- Yamada, N.; Murasawa, G. Film Fabrication Using Poly(vinylidene fluoride) Solution Droplet. J. Mater. Eng. Perform. 2017, 26, 2072–2078. [Google Scholar] [CrossRef]
- Zhang, C.; Wei, W.; Sun, H.; Zhu, Q. Performance Enhancements in Poly(vinylidene fluoride)-Based Piezoelectric Films Prepared by the Extrusion-Casting Process. J. Mater. Sci. Mater. Electron. 2021, 32, 21837–21847. [Google Scholar] [CrossRef]
- Zhang, C. Large-Scale Fabrication of High β-Phase PVDF Films with Enhanced Piezoelectric and Electrode Formation Properties. J. Mater. Eng. Perform. 2025, 34, 15840–15853. [Google Scholar] [CrossRef]
- Husain, M.; Singh, R.; Pabla, B.S. On Process Capability of Single Screw Extruder for Fabricating PVDF Composite Matrix. Mater. Today Proc. 2023, in press. [Google Scholar] [CrossRef]
- Kondrashov, S.V.; Buryanskaya, E.L.; Osipkov, A.S.; Kirkin, V.S.; Butina, M.V.; Mikhalev, P.A.; Ryzhenko, D.S.; Makeev, M.O. Low-Temperature Uniaxial Orientation Effect on the Structure and Piezoelectric Properties of Vinylidene Fluoride–Tetrafluoroethylene Copolymer Films. Int. J. Mol. Sci. 2025, 26, 6309. [Google Scholar] [CrossRef] [PubMed]
- Chang, W.Y.; Fang, T.H.; Liu, S.Y.; Lin, Y.C. Phase Transformation and Thermomechanical Characteristics of Stretched Polyvinylidene Fluoride. Mater. Sci. Eng. A 2008, 480, 477–482. [Google Scholar] [CrossRef]
- Wang, Y.; Lei, D.; Wu, L.; Ma, R.; Ning, H.; Hu, N.; Lee, A. Effects of Stretching on Phase Transformation of PVDF and Its Copolymers: A Review. Open Phys. 2023, 21, 20220255. [Google Scholar] [CrossRef]
- Kaur, S.; Kumar, A.; Sharma, A.L.; Singh, D.P. Influence of Annealing on Dielectric and Polarization Behavior of PVDF Thick Films. J. Mater. Sci. Mater. Electron. 2017, 28, 8391–8396. [Google Scholar] [CrossRef]
- Kochervinskii, V.V.; Buryanskaya, E.L.; Osipkov, A.S.; Makeev, M.O.; Kiselev, D.A.; Gradova, M.A.; Gradov, O.V.; Lokshin, B.V.; Korlyukov, A.A. The Effect of Electric Aging on Vinylidene Fluoride Copolymers for Ferroelectric Memory. Nanomaterials 2024, 14, 1002. [Google Scholar] [CrossRef] [PubMed]
- Uneda, K.; Horike, S.; Koshiba, Y.; Ishida, K. Dipole Switching Dynamics in P(VDF-TrFE) Film Revealed by In Situ Polarization Switching and Infrared Spectroscopy Measurements with High-Time Resolution. Polymer 2022, 249, 124822. [Google Scholar] [CrossRef]
- Hu, X.; Ding, Z.; Fei, L.; Xiang, Y.; Lin, Y. Wearable Piezoelectric Nanogenerators Based on Reduced Graphene Oxide and In Situ Polarization-Enhanced PVDF-TrFE Films. J. Mater. Sci. 2019, 54, 6401–6409. [Google Scholar] [CrossRef]
- Li, Y.; Feng, W.; Meng, L.; Tse, K.M.; Li, Z.; Huang, L.; Su, Z.; Guo, S. Investigation on In Situ Sprayed, Annealed and Corona Poled PVDF-TrFE Coatings for Guided Wave-Based Structural Health Monitoring: From Crystallization to Piezoelectricity. Mater. Des. 2021, 199, 109415. [Google Scholar] [CrossRef]
- McKinney, J.E.; Davis, G.T.; Broadhurst, M.G. Plasma Poling of Poly(vinylidene fluoride): Piezo- and Pyroelectric Response. J. Appl. Phys. 1980, 51, 1676–1681. [Google Scholar] [CrossRef]
- Basov, B.A.; Makarova, K.T.; Buryanskaya, E.L.; Zinnatullin, A.R.; Moiseev, K.M.; Osipkov, A.S.; Parshin, B.A.; Makeev, M.O. Comparative Study of Different Polarization Methods on the Structure and Electrophysical Properties of Polymer Ferroelectric Films. In Proceedings of the IEEE International Symposium on Applications of Ferroelectrics (ISAF), Graz, Austria, 13–18 July 2025; pp. 1–5. [Google Scholar] [CrossRef]
- Shikova, T.G.; Kholodkov, I.V.; Smirnov, S.A.; Gorberg, B.L.; Makeev, M.O.; Mikhalev, P.A.; Osipkov, A.S. Kinetic features of plasma-chemical modification of polyvinylidene fluoride in plasma. High Energy Chem. 2024, 58, 265–270. [Google Scholar] [CrossRef]
- Primc, G.; Mozetič, M. Surface modification of polymers by plasma treatment for appropriate adhesion of coatings. Materials 2024, 17, 1494. [Google Scholar] [CrossRef] [PubMed]
- Vesel, A.; Zaplotnik, R.; Primc, G.; Mozetič, M.; Katan, T.; Kargl, R.; Mohan, T.; Kleinschek, K.S. Non-equilibrium plasma methods for tailoring surface properties of polyvinylidene fluoride: Review and challenges. Polymers 2021, 13, 4243. [Google Scholar] [CrossRef] [PubMed]
- Pascu, M.; Nicolas, D.; Poncin-Epaillard, F.; Vasile, C. Surface modification of PVDF by plasma treatment for electroless metallization. J. Optoelectron. Adv. Mater. 2006, 8, 1062–1064. [Google Scholar] [CrossRef]
- Turkoglu Sasmazel, H.; Alazzawi, M.; Kadim Abid Alsahib, N. Atmospheric pressure plasma surface treatment of polymers and influence on cell cultivation. Molecules 2021, 26, 1665. [Google Scholar] [CrossRef] [PubMed]
- Sultanov, V.I.; Atrazhev, V.V.; Dmitriev, D.V. Modeling Impact of Regiodefects on the Electrocaloric Effect in Poly(VDF-co-TrFE) Copolymers. J. Phys. Chem. B 2024, 128, 6376–6386. [Google Scholar] [CrossRef] [PubMed]
- Dvey-Aharon, H.; Krumhansl, J.A.; Bishop, A.R. Kink Propagation as a Model for Poling in Poly(vinylidene fluoride). Phys. Rev. B 1980, 21, 3700–3707. [Google Scholar] [CrossRef]
- Yang, L.; Ho, J.; Allahyarov, E.; Mu, R.; Zhu, L. Semicrystalline Structure–Dielectric Property Relationship and Electrical Conduction in a Biaxially Oriented Poly(vinylidene fluoride) Film under High Electric Fields and High Temperatures. ACS Appl. Mater. Interfaces 2015, 7, 19894–19905. [Google Scholar] [CrossRef] [PubMed]
- Sencadas, V.; Gregorio, R., Jr.; Lanceros-Méndez, S. Poling of β-Poly(vinylidene fluoride): Dielectric and IR Spectroscopy Studies. e-Polymers 2005, 5, 002. [Google Scholar] [CrossRef]
- Sencadas, V.; Gregorio, R., Jr.; Lanceros-Méndez, S. α to β Phase Transformation and Microstructural Changes of PVDF Films Induced by Uniaxial Stretch. J. Macromol. Sci. B 2009, 48, 514–525. [Google Scholar] [CrossRef]
- Kochervinskii, V.V.; Buryanskaya, E.L.; Makeev, M.O.; Mikhalev, P.A.; Kiselev, D.A.; Ilina, T.S.; Lokshin, B.V.; Zvyagina, A.I.; Kirakosyan, G.A. Effect of Composition and Surface Microstructure in Self-Polarized Ferroelectric Polymer Films on the Magnitude of the Surface Potential. Nanomaterials 2023, 13, 2851. [Google Scholar] [CrossRef] [PubMed]
- Basov, B.A.; Makarova, K.T.; Moiseev, K.M.; Osipkov, A.S. Investigation of the Plasma Polarization Parameters Effect on the Polyvinylidene Fluoride Film Piezoelectric Properties Used for Flexible Nanogenerators. In Proceedings of the 7th International Youth Conference on Radio Electronics, Electrical and Power Engineering (REEPE), Moscow, Russia, 8–10 April 2025; pp. 1–5. [Google Scholar] [CrossRef]
- Basov, B.A.; Makarova, K.T.; Buryanskaya, E.L.; Moiseev, K.M.; Osipkov, A.S.; Mal’tsev, A.A.; Butina, M.V.; Makeev, M.O. Polarization of Ferroelectric PVDF Film Produced in Russia in Glow Discharge Plasma. Uchenye Zap. Kazan. Univ. Seriya Fiz.-Mat. Nauk. 2026, 168, 207–219. [Google Scholar] [CrossRef]
- Basov, B.A. The Glow-Discharge Plasma Polarization Effect on PVDF Film Properties. In Proceedings of the IEEE Ultrasonics, Ferroelectrics, and Frequency Control Joint Symposium, Taipei, Taiwan, 22–26 September 2024; pp. 1–6. [Google Scholar] [CrossRef]
- Giacometti, J.A.; Fedosov, S.N.; Costa, M.M. Corona Charging of Polymers: Recent Advances on Constant Current Charging. Braz. J. Phys. 1999, 29, 269–279. [Google Scholar] [CrossRef]
- Yablokov, M.Y.; Kuznetsov, A.A. Electret properties and wettability of polymer materials treated by DC glow discharge. Phys. Complex Syst. 2024, 5, 202–204. [Google Scholar] [CrossRef]
- Stalder, A.F.; Kulik, G.; Sage, D.; Barbieri, L.; Hoffmann, P. A snake-based approach to accurate determination of both contact points and contact angles. Colloids Surf. A Physicochem. Eng. Asp. 2006, 286, 92–103. [Google Scholar] [CrossRef]
- Cai, X.; Lei, T.; Sun, D.; Lin, L. A Critical Analysis of the α, β and γ Phases in Poly(vinylidene fluoride) Using FTIR. RSC Adv. 2017, 7, 15382–15389. [Google Scholar] [CrossRef]
- Muñoz, R.C.; Vidal, G.; Mulsow, M.; Lisoni, J.G.; Arenas, C.; Concha, A. Surface Roughness and Surface-Induced Resistivity of Gold Films on Mica: Application of Quantitative Scanning Tunneling Microscopy. Phys. Rev. B 2000, 62, 4686–4697. [Google Scholar] [CrossRef]
- Kiselev, D.A.; Bdikin, I.K.; Selezneva, E.K.; Bormanis, K.; Sternberg, A.; Kholkin, A.L. Grain Size Effect and Local Disorder in Polycrystalline Relaxers via Scanning Probe Microscopy. J. Phys. D Appl. Phys. 2007, 40, 7109–7112. [Google Scholar] [CrossRef]
- Vodyashkin, A.; Koshevaya, E.; Makeev, M.; Kezimana, P. Piezoelectric PVDF and Its Copolymers in Biomedicine: Innovations and Applications. Biomater. Sci. 2024, 12, 5164–5185. [Google Scholar] [CrossRef] [PubMed]
- Fan, Z.; Schwedes, M.; Schwaderer, J.; Beuermann, S.; Fischlschweiger, M. Molecular Weight as a Key for Electroactive Phase Formation in Poly(Vinylidene Fluoride). Mater. Res. Lett. 2022, 10, 271–277. [Google Scholar] [CrossRef]
- ISO 13468-2:2021; Plastics—Determination of the Total Luminous Transmittance of Transparent Materials—Part 2: Double-Beam Instrument. ISO: Geneva, Switzerland, 2021.
- ISO 14782:2021; Plastics—Determination of Haze for Transparent Materials. ISO: Geneva, Switzerland, 2021.
- Anokhin, D.V.; Plieva, D.S.; Rosenthal, M.; Churakov, A.V.; Ivanov, D.A. Thermal Behavior, Local-Scale Morphology, and Phase Composition of Spherulites in Melt-Crystallized Poly(vinylidene fluoride) Films. Crystals 2025, 15, 94. [Google Scholar] [CrossRef]
- Pretsch, E.; Bühlmann, P.; Affolter, C. Structure Determination of Organic Compounds: Tables of Spectral Data, 3rd ed.; Springer: Berlin/Heidelberg, Germany, 2000. [Google Scholar] [CrossRef]
- Li, K.; Xu, W.; Wen, G.; Zhou, Z.; Han, M.; Zhang, S.; Huang, T. Aging of Polyvinylidene Fluoride (PVDF) Ultrafiltration Membrane Due to Ozone Exposure in Water Treatment: Evolution of Membrane Properties and Performance. Chemosphere 2022, 308, 136520. [Google Scholar] [CrossRef] [PubMed]
- Park, Y.W.; Inagaki, N. Surface Modification of Poly(Vinylidene Fluoride) Film by Remote Ar, H2, and O2 Plasmas. Polymer 2003, 44, 1569–1575. [Google Scholar] [CrossRef]
- Kaynak, A.; Mehmood, T.; Dai, X.J.; Magniez, K.; Kouzani, A. Study of Radio Frequency Plasma Treatment of PVDF Film Using Ar, O2 and (Ar + O2) Gases for Improved Polypyrrole Adhesion. Materials 2013, 6, 3482–3493. [Google Scholar] [CrossRef] [PubMed]
- Pianca, M.; Barchiesi, E.; Esposto, G.; Radice, S. End Groups in Fluoropolymers. J. Fluor. Chem. 1999, 95, 71–84. [Google Scholar] [CrossRef]
- Strada, R.; Dunlop, D.; Šebej, P. Cyanines Substituted on the Polymethine Chain: Synthesis, Resulting Properties, and Application Use Cases. ChemPlusChem 2025, 90, e202500279. [Google Scholar] [CrossRef] [PubMed]
- Kise, H.; Ogata, H. Phase Transfer Catalysis in Dehydrofluorination of Poly(vinylidene fluoride) by Aqueous Sodium Hydroxide Solutions. J. Polym. Sci. Polym. Chem. Ed. 1983, 21, 3443–3451. [Google Scholar] [CrossRef]
- Solodilov, V.I.; Kochervinskii, V.V.; Osipkov, A.S.; Makeev, M.O.; Maltsev, A.; Yurkov, G.Y.; Lokshin, B.; Bedin, S.; Shapetina, M.; Tretyakov, I.; et al. Structure and Thermomechanical Properties of Polyvinylidene Fluoride Film with Transparent Indium Tin Oxide Electrodes. Polymers 2023, 15, 1483. [Google Scholar] [CrossRef] [PubMed]
- Osipkov, A.S.; Makeev, M.O.; Solodilov, V.I.; Moiseev, K.M.; Mikhalev, P.A.; Makarova, K.T.; Emanov, D.P.; Parshin, B.A.; Khromova, M.A. Stability of the Properties of an Acousto-Optical Converter Based on Polyvinylidene Fluoride Films under External Influence. J. Opt. Technol. 2024, 91, 502–508. [Google Scholar] [CrossRef]
- Mahadeva, S.K.; Berring, J.; Walus, K.; Stoeber, B. Effect of Poling Time and Grid Voltage on Phase Transition and Piezoelectricity of Poly(vinylidene fluoride) Thin Films Using Corona Poling. J. Phys. D Appl. Phys. 2013, 46, 285305. [Google Scholar] [CrossRef]
- Tao, R.; Shi, J.; Rafiee, M.; Akbarzadeh, A.; Therriault, D. Fused Filament Fabrication of PVDF Films for Piezoelectric Sensing and Energy Harvesting Applications. Mater. Adv. 2022, 3, 4851–4860. [Google Scholar] [CrossRef]
- Muduli, S.P.; Lipsa, L.; Parida, S. Current Trends of Characterization Techniques for PVDF and Related Composite Piezoelectric Materials for Nanogenerator. Discov. Polym. 2025, 2, 14. [Google Scholar] [CrossRef]
- Kumar, A.D.; Arunachalam, N.; Jayaganthan, R. Effect of Poling Methods on the Functional Properties of Fused Deposition Modeling Printed Polyvinylidene Fluoride for Sensing Application. J. Mater. Eng. Perform. 2025, 34, 1695–1704. [Google Scholar] [CrossRef]











| t, min | Initial | 0.5 | 0.75 | 1 | 1.5 | 2 | 2.5 | 3 | 3.5 | 5 | 7 | 10 | 15 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| (β + γ) content | 0.77 | 0.69 | 0.72 | 0.69 | 0.73 | 0.74 | 0.78 | 0.79 | 0.75 | 0.78 | 0.82 | 0.80 | 0.81 |
| Iα/Iam peak ratio | 1.07 | 1.21 | 0.99 | 1.17 | 0.89 | 0.84 | 0.71 | 0.67 | 0.81 | 0.68 | 0.54 | 0.69 | 0.51 |
| t, min | Initial | 0.5 | 1 | 1.5 | 2.5 | 3.5 | 5 | 10 | 15 |
|---|---|---|---|---|---|---|---|---|---|
| Melting enthalpy ΔHm, J/g | 51.8 | 53.7 | 53.2 | 55.3 | 56.3 | 52.3 | 54.1 | 54.4 | 54.3 |
| Electroactive phase content (FTIR) | 0.77 | 0.69 | 0.69 | 0.73 | 0.78 | 0.75 | 0.78 | 0.8 | 0.81 |
| Crystallinity degree χc, % | 52.7 | 53.6 | 53.1 | 54.9 | 55.7 | 52.3 | 53.5 | 53.7 | 53.5 |
| t, min | 0 | 0.5 | 1 | 1.5 | 2.5 | 3.5 | 5 | 10 | 15 |
|---|---|---|---|---|---|---|---|---|---|
| RMS, nm | 27 | 36 | 33 | 27 | 32 | 35 | 24 | 26 | 29 |
| ξ, nm | 86 | 404 | 552 | 140 | 473 | 150 | 147 | 103 | 206 |
| Parameters | Glow-Discharge Plasma | Corona Discharge | Contact |
|---|---|---|---|
| Achievable d33 for pure PVDF film, pC/N | Comparable (up to ~25 pC/N) | Comparable (up to ~25 pC/N) | Comparable (up to ~25 pC/N) |
| Processing time, min | 1–5 | 1–30 [66] | 1–60 [67] |
| Homogeneity of poling field | High, owing to flat electrodes and vacuum environment | Low, owing to highly localized electric field near point/edge electrodes [45] | High, but limited by electrode–film interface quality [68] |
| Effect of dielectric breakdown | Local surface damage in breakdown regions | Structural damage and reduced piezoelectric response in affected regions [29] | Structural damage and possible short-circuiting in breakdown regions [69] |
| Flexibility of electrode configuration on film | Supports electrode-free, single-sided, and double-sided configurations [43] | Limited: single-sided configuration with a counter electrode [45] | Limited: electrodes on both sides are required (sandwich configuration) [69] |
| Process cleanliness | Clean, vacuum-based; no liquid dielectric media required | Clean (no direct contact), but exposure to ambient species may affect activated surfaces | Requires liquid dielectric media (e.g., oil) [67], risk of contamination |
| Compatibility with vacuum deposition of electrodes in one cycle | Potentially compatible with in situ vacuum deposition | Not compatible | Not compatible |
| Availability of roll-to-roll film poling | Potentially available | Available | Not available |
| Effect on optical properties | Increased turbidity after prolonged plasma treatment occurs if transparent electrode on plasma-facing surface is not pre-applied | No significant changes reported or possible surface activation effects | No changes |
| Thermal film deformation | May occur after prolonged plasma treatment | May occur during prolonged heating | May occur during prolonged heating |
| Processing equipment costs | Requires a vacuum chamber and pumping system; relatively high equipment cost | Requires a corona discharge unit; moderate cost | Relatively simple and low-cost setup; high-voltage power supply required |
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Basov, B.A.; Buryanskaya, E.L.; Makarova, K.T.; Zinnatullin, A.R.; Moiseev, K.M.; Osipkov, A.S.; Maltsev, A.A.; Parshin, B.A.; Ryzhenko, D.S.; Makeev, M.O. Vacuum-Compatible Electrode-Free Poling of PVDF Films Using Glow-Discharge Plasma. Polymers 2026, 18, 1926. https://doi.org/10.3390/polym18151926
Basov BA, Buryanskaya EL, Makarova KT, Zinnatullin AR, Moiseev KM, Osipkov AS, Maltsev AA, Parshin BA, Ryzhenko DS, Makeev MO. Vacuum-Compatible Electrode-Free Poling of PVDF Films Using Glow-Discharge Plasma. Polymers. 2026; 18(15):1926. https://doi.org/10.3390/polym18151926
Chicago/Turabian StyleBasov, Bogdan A., Evgeniya L. Buryanskaya, Kamila T. Makarova, Artur R. Zinnatullin, Konstantin M. Moiseev, Alexey S. Osipkov, Alexander A. Maltsev, Bogdan A. Parshin, Dmitriy S. Ryzhenko, and Mstislav O. Makeev. 2026. "Vacuum-Compatible Electrode-Free Poling of PVDF Films Using Glow-Discharge Plasma" Polymers 18, no. 15: 1926. https://doi.org/10.3390/polym18151926
APA StyleBasov, B. A., Buryanskaya, E. L., Makarova, K. T., Zinnatullin, A. R., Moiseev, K. M., Osipkov, A. S., Maltsev, A. A., Parshin, B. A., Ryzhenko, D. S., & Makeev, M. O. (2026). Vacuum-Compatible Electrode-Free Poling of PVDF Films Using Glow-Discharge Plasma. Polymers, 18(15), 1926. https://doi.org/10.3390/polym18151926

