Electrical, photocatalytic, and sensory properties of graphene oxide and polyimide implanted with low- and medium-energy silver ions

. 2025 ; 16 () : 1794-1811. [epub] 20251013

Status PubMed-not-MEDLINE Jazyk angličtina Země Německo Médium electronic-ecollection

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid41122299

Precise control of electrical conductivity, humidity sensitivity, and photocatalytic activity in polymeric and carbon-based materials is essential for advancing technologies in environmental sensing, flexible electronics, and photocatalytic systems. Conventional chemical modification methods often lack spatial precision, introduce impurities, and risk structural degradation. Ion implantation provides a controllable alternative for tuning surface properties at the nanoscale, enabling the targeted introduction of functional species without chemical reagents. This work investigates the effects of low-energy (20 keV) and medium-energy (1.5 MeV) Ag+ ion implantation on the electrical, sensory, and photocatalytic properties of graphene oxide (GO) and polyimide (PI). Implantations were carried out with fluences ranging from 3.75 × 1012 cm-2 to 1 × 1016 cm-2. Silver ions offer excellent electrical, catalytic, and plasmonic characteristics, making them ideal for multifunctional enhancement of GO and PI. Elemental and structural changes induced by implantation were analyzed using Rutherford backscattering spectroscopy, elastic recoil detection analysis, Raman spectroscopy, Fourier-transform infrared spectroscopy, and X-ray photoelectron spectroscopy. Surface morphology was assessed via atomic force microscopy. Electrical properties as a function of air humidity were evaluated using a two-point method, and photocatalytic activity was tested by monitoring the UV-induced decomposition of rhodamine B. The results demonstrate that ion implantation significantly reduces surface resistivity and enhances both the photocatalytic activity and humidity sensitivity of GO and PI. The most pronounced improvements occurred at higher fluences, where defect generation and partial deoxygenation contributed to optimal performance. Ion implantation thus represents an effective approach for tuning the multifunctional behavior of polymer systems.

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Novák J, Stepanovská E, Malinský P, Mazanek V, Sofer Z, Kentsch U, Mackova A. Nucl Instrum Methods Phys Res, Sect B. 2023;540:199–209. doi: 10.1016/j.nimb.2023.04.014. DOI

Stepanovská E, Novák J, Malinský P, Marvan P, Sofer Z, Mackova A. Nucl Instrum Methods Phys Res, Sect B. 2023;541:180–189. doi: 10.1016/j.nimb.2023.05.063. DOI

Malinský P, Romanenko O, Havránek V, Cutroneo M, Novák J, Štěpanovská E, Mikšová R, Marvan P, Mazánek V, Sofer Z, et al. Polymers (Basel, Switz) 2023;15:1066. doi: 10.3390/polym15051066. PubMed DOI PMC

Sviridov D V. Russ Chem Rev. 2002;71:315–327. doi: 10.1070/rc2002v071n04abeh000710. DOI

Popok V N, Azarko I I, Khaibullin R I, Stepanov A L, Hnatowicz V, Mackova A, Prasalovich S V. Appl Phys A: Mater Sci Process. 2004;78(7):1067–1072. doi: 10.1007/s00339-003-2166-9. DOI

Kavetskyy T, Nowak J, Borc J, Rusnák J, Šauša O, Stepanov A L. Spectrosc Lett. 2016;49:5–10. doi: 10.1080/00387010.2015.1044113. DOI

Nie J, Wu Y, Huang Q, Joshi N, Li N, Meng X, Zheng S, Zhang M, Mi B, Lin L. ACS Appl Mater Interfaces. 2019;11(1):1699–1705. doi: 10.1021/acsami.8b18538. PubMed DOI

Zhang J, Liu L, Yang Y, Huang Q, Li D, Zeng D. Phys Chem Chem Phys. 2021;23:15420–15439. doi: 10.1039/d1cp01890f. PubMed DOI

Alemán C, Fabregat G, Armelin E, Buendía J J, Llorca J. J Mater Chem B. 2018;6:6515–6533. doi: 10.1039/c8tb01553h. PubMed DOI

Boudaden J, Steinmaßl M, Endres H-E, Drost A, Eisele I, Kutter C, Müller-Buschbaum P. Sensors. 2018;18(5):1516. doi: 10.3390/s18051516. PubMed DOI PMC

Lakard B. Appl Sci. 2020;10:6614. doi: 10.3390/app10186614. DOI

Malinský P, Cutroneo M, Macková A, Hnatowicz V, Szökölová K, Bohačová M, Luxa J, Sofer Z. Surf Interface Anal. 2018;50:1110–1115. doi: 10.1002/sia.6475. DOI

Popok V N. High-fluence ion implantation of polymers: evolution of structure and composition. In: Kumar V, Chaudhary B, Sharma V, et al., editors. Radiation Effects in Polymeric Materials. Cham, Switzerland: Springer International Publishing; 2019. pp. 69–111. DOI

Raja V, Shiamala L, Alamelu K, Jaffar Ali B M. Sol Energy Mater Sol Cells. 2016;152:125–132. doi: 10.1016/j.solmat.2016.03.008. DOI

Kondyurin A, Bilek M. Ion Beam Treatment of Polymers: Application Aspects from Medicine to Space. 2nd ed. Amsterdam, Netherlands: Elsevier; 2014.

Zaaba N I, Foo K L, Hashim U, Tan S J, Liu W-W, Voon C H. Procedia Eng. 2017;184:469–477. doi: 10.1016/j.proeng.2017.04.118. DOI

Goodfellow, https://www.goodfellow.com. Available from: https://www.goodfellow.com.

Martienssen W, Warlimont H, editors. Springer Handbook of Condensed Matter and Materials Data. Berlin, Germany: Springer; 2005. DOI

Mayer M. SIMNRA, a Simulation Program for the Analysis of NRA, RBS and ERDA. In: Duggan J L, Morgan I L, editors. AIP Conf. Proc.; 15th International Conference on the Application of Accelerators in Research and Industry,; 1999. pp. 541–544. DOI

Eswar N K, Ramamurthy P C, Madras G. Photochem Photobiol Sci. 2015;14:1227–1237. doi: 10.1039/c5pp00092k. PubMed DOI

Mikšová R, Macková A, Pupíková H, Malinský P, Slepička P, Švorčík V. Nucl Instrum Methods Phys Res, Sect B. 2017;406:199–204. doi: 10.1016/j.nimb.2017.02.089. DOI

Ziegler J F. Nucl Instrum Methods Phys Res, Sect B. 2004;219–220:1027–1036. doi: 10.1016/j.nimb.2004.01.208. DOI

Romanenko O, Havránek V, Malinský P, Slepička P, Stammers J, Švorčík V, Macková A, Fajstavr D. Nucl Instrum Methods Phys Res, Sect B. 2019;461:175–180. doi: 10.1016/j.nimb.2019.09.043. DOI

Malinský P, Cutroneo M, Macková A, Hnatowicz V, Szökölová K, Bohačová M, Luxa J, Sofer Z. Surf Interface Anal. 2018;50(11):1110–1115. doi: 10.1002/sia.6475. DOI

Malinský P, Macková A, Mikšová R, Kováčiková H, Cutroneo M, Luxa J, Bouša D, Štrochová B, Sofer Z. Phys Chem Chem Phys. 2017;19(16):10282–10291. doi: 10.1039/c6cp08937b. PubMed DOI

Zeng D W, Yung K C, Xie C S. Surf Coat Technol. 2002;153:210–216. doi: 10.1016/s0257-8972(01)01696-6. DOI

Khomiakova N, Hanuš J, Kuzminova A, Kylián O. Coatings. 2020;10:619. doi: 10.3390/coatings10070619. DOI

Tao Y, Pescarmona P P. Catalysts. 2018;8(5):212. doi: 10.3390/catal8050212. DOI

Wolverson D. Characterization of Semiconductor Heterostructures and Nanostructures. Amsterdam, Netherlands: Elsevier; 2008. Raman spectroscopy; pp. 249–288. DOI

Costantini J-M, Couvreur F, Salvetat J-P, Bouffard S. Nucl Instrum Methods Phys Res, Sect B. 2002;194:132–140. doi: 10.1016/s0168-583x(02)00669-9. DOI

Gadelmawla E S, Koura M M, Maksoud T M A, Elewa I M, Soliman H H. J Mater Process Technol. 2002;123:133–145. doi: 10.1016/s0924-0136(02)00060-2. DOI

Dietzel A, Bruenger W H, Loeschner H, Platzgummer E. 4M 2006 – Second International Conference on Multi-Material Micro Manufacture. Oxford, UK: Elsevier; 2006. Micro- and nano-structuring using ion beams; pp. 9–12. DOI

Bar N, Chowdhury P. ACS Appl Electron Mater. 2022;4:3749–3771. doi: 10.1021/acsaelm.2c00107. DOI

Wang A, Li X, Zhao Y, Wu W, Chen J, Meng H. Powder Technol. 2014;261:42–48. doi: 10.1016/j.powtec.2014.04.004. DOI

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