Metals Oxides-Reinforced Epoxy Nanocomposites for Energy Applications: A First Comparative Study of the Structural and Optical Properties of SnO2 and ZnO Oxides
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Details
2.2. Technical Characteristics
2.2.1. Morphology Studies
2.2.2. Structural Characterizations
- a.
- Determination of the size of the crystallites
- b.
- Dislocation Density
2.2.3. ATR-FTIR Analysis
2.2.4. Optical Characteristics
2.2.5. Optical Gap and Urbach Energy
3. Results and Discussion
3.1. Structural Characterization
3.1.1. XRD Patterns
3.1.2. Fourier Transforms Infrared Spectroscopy Analysis
3.2. Morphological Characterization
3.3. Water Absorption Tests
3.4. Optical Properties
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Sharma, S.; Mishra, M.; Sharma, H.; Chauhan, A.S.; Das, B.; Rajput, D.; Pandey, V.; Tripathi, R.B.; Sharma, R. Polymeric nanocomposites: Recent advances, challenges, techniques, and biomedical applications. Arch. Biochem. Biophys. 2025, 83, 1019–1039. [Google Scholar] [CrossRef]
- Shameem, M.M.; Sm, S.; Raja, A.; Rajendra, G.R. A brief review on polymer nanocomposites and its applications. Mater. Today Proc. 2021, 45, 2536–2539. [Google Scholar] [CrossRef]
- Li, L.; Han, L.; Hu, H.; Zhang, R. A review on polymers and their composites for flexible electronics. Mater. Adv. 2023, 4, 726–746. [Google Scholar] [CrossRef]
- Fu, S.; Sun, Z.; Huang, P.; Li, Y.; Hu, N. Some basic aspects of polymer nanocomposites: A critical review. Nano Mater. Sci. 2019, 1, 2–30. [Google Scholar] [CrossRef]
- Deng, Y.; Wong, Y.W.; Teh, L.K.Y.; Wang, Q.; Sun, W.; Chern, W.K.; Oh, J.T.; Chen, Z. Optimizing dielectric, mechanical, and thermal properties of epoxy resin through molecular design for multifunctional performance. Mater. Horiz. 2025, 12, 1323–1333. [Google Scholar] [CrossRef]
- Fekiač, J.J.; Krbata, M.; Kohutiar, M.; Janík, R.; Kakošová, L.; Breznická, A.; Eckert, M.; Mikuš, P. Comprehensive review: Optimization of epoxy composites, mechanical properties, and technological trends. Polymers 2025, 17, 271. [Google Scholar] [CrossRef] [PubMed]
- Gupta, V.; Bankapalli, N.K.; Saxena, P.; Bajpai, A.; Ruan, D. Additive Manufacturing of Fiber-Reinforced Polymer Matrix Composites through Material Extrusion: A Comprehensive Review on Filament Fabrication, Printing, Testing Methods, Applications, and Challenges. Adv. Eng. Mater. 2025, 27, 2500676. [Google Scholar] [CrossRef]
- Belyamani, I.; Prochazka, F.; Assezat, G. Production and characterization of sodium caseinate edible films made by blown-film extrusion. J. Food Eng. 2014, 121, 39–47. [Google Scholar] [CrossRef]
- Mehwish, N.; Kausar, A.; Siddiq, M. High-performance polyvinylidene fluoride/poly(styrene–butadiene–styrene)/functionalized MWCNTs-SCN-Ag nanocomposite membranes. Iran. Polym. J. 2015, 24, 549–559. [Google Scholar] [CrossRef]
- Vu, P.G.; Truc, T.A.; Chinh, N.T.; Tham, D.Q.; Trung, T.H.; Oanh, V.K.; Hang, T.T.X.; Olivier, M.; Hoang, T. Improvement of mechanical and dielectric properties of epoxy resin using CNTs/ZnO nanocomposite. J. Nanosci. Nanotechnol. 2018, 18, 2830–2837. [Google Scholar] [CrossRef] [PubMed]
- Krieg, A.S.; King, J.A.; Odegard, G.M.; Leftwich, T.R.; Odegard, L.K.; Fraley, P.D.; Miskioglu, I.; Jolowsky, C.; Lundblad, M.; Park, J.G.; et al. Mechanical properties and characterization of epoxy composites containing highly entangled as-received and acid treated carbon nanotubes. Nanomaterials 2021, 11, 2445. [Google Scholar] [CrossRef] [PubMed]
- Hu, H.; Zhang, X.; Zhang, D.; Gao, J.; Hu, C.; Wang, Y. Study on the Nonlinear Conductivity of SiC/ZnO/Epoxy Resin Micro- and Nanocomposite Materials. Materials 2019, 12, 761. [Google Scholar] [CrossRef]
- Wazalwar, R.; Sahu, M.; Raichur, A.M. Mechanical properties of aerospace epoxy composites reinforced with 2D nano-fillers: Current status and road to industrialization. Nanoscale Adv. 2021, 3, 2741–2776. [Google Scholar] [CrossRef]
- Şomoghi, R.; Semenescu, A.; Pasăre, V.; Chivu, O.R.; Nițoi, D.F.; Marcu, D.F.; Florea, B. The impact of ZnO nanofillers on the mechanical and anti-corrosion performances of epoxy composites. Polymers 2024, 16, 2054. [Google Scholar] [CrossRef]
- Dallaev, R.; Pisarenko, T.; Papež, N.; Sadovský, P.; Holcman, V. A Brief Overview on Epoxies in Electronics: Properties, Applications, and Modifications. Polymers 2023, 15, 3964. [Google Scholar] [CrossRef]
- Tachikawa, S.; Noguchi, A.; Tsuge, T.; Hara, M.; Odawara, O.; Wada, H. Optical Properties of ZnO Nanoparticles Capped with Polymers. Materials 2011, 4, 1132–1144. [Google Scholar] [CrossRef]
- Abd-Elnaiem, A.M.; Rashad, M.; Hanafy, T.A.; Shaalan, N.M. Improvement of Optical Properties of Functionalized Polyvinyl Alcohol-Zinc Oxide Hybrid Nanocomposites for Wide UV Optoelectronic Applications. J. Inorg. Organomet. Polym. Mater. 2023, 33, 2429–2444. [Google Scholar] [CrossRef]
- Goswami, Y.C.; Bisauriya, R.; Goswami, R.; Hlaing, A.A.; Moe, T.T. Hydrothermal synthesis of SnO2/cellulose nanocomposites: Optical, structural, and morphological characterization. Sci. Rep. 2025, 15, 9752. [Google Scholar] [CrossRef] [PubMed]
- Ambrosio, R.; Carrillo, A.; Mota, M.L.; De la Torre, K.; Torrealba, R.; Moreno, M.; Vazquez, H.; Flores, J.; Vivaldo, I. Polymeric nanocomposites membranes with high permittivity based on PVA-ZnO nanoparticles for potential applications in flexible electronics. Polymers 2018, 10, 1370. [Google Scholar] [CrossRef]
- Tababouchet, M.Y.; Sakri, A.; Bouremel, C.; Boutarfaia, A. Synthesis of Polyaniline-Zinc Oxide Composites: Assessment of Structural, Morphological, and Electrical Properties. Ann. Chim. Sci. Matériaux 2023, 47, 399–404. [Google Scholar] [CrossRef]
- Abdullah, O.G.; Salman, Y.A.K.; Tahir, D.A.; Jamal, G.M.; Ahmed, H.T.; Mohamad, A.H.; Azawy, A.K. Effect of ZnO nanoparticle content on the structural and ionic transport parameters of polyvinyl alcohol based proton-conducting polymer electrolyte membranes. Membranes 2021, 11, 163. [Google Scholar] [CrossRef]
- Sirelkhatim, A.; Mahmud, S.; Seeni, A.; Kaus, N.H.M.; Ann, L.C.; Bakhori, S.K.M.; Hasan, H.; Mohamad, D. Review on Zinc Oxide Nanoparticles: Antibacterial Activity and Toxicity Mechanism. Nano Micro Lett. 2015, 7, 219–242. [Google Scholar] [CrossRef]
- Długosz, O.; Szostak, K.; Banach, M. Photocatalytic properties of zirconium oxide–zinc oxide nanoparticles synthesised using microwave irradiation. Nano Micro Lett. 2020, 10, 941–954. [Google Scholar] [CrossRef]
- AlAhzm, A.M.; Alejli, M.O.; Ponnamma, D.; Elgawady, Y.; Al-Maadeed, M.A.A. Piezoelectric properties of zinc oxide/iron oxide-filled polyvinylidene fluoride nanocomposite fibers. J. Mater. Sci. Mater. Electron. 2021, 32, 14610–14622. [Google Scholar] [CrossRef]
- Becheri, A.; Dürr, M.; Lo Nostro, P.; Baglioni, P. Synthesis and characterization of zinc oxide nanoparticles: Application to textiles as UV-absorbers. J. Nanopart. Res. 2008, 10, 679–689. [Google Scholar] [CrossRef]
- Chouhan, S.; Bajpai, A.K.; Bajpai, J.; Katare, R.; Dhoble, S.J. Mechanical and UV absorption behavior of zinc oxide nanoparticles: Reinforced poly(vinyl alcohol-g-acrylonitrile) nanocomposite films. Polym. Bull. 2017, 74, 4119–4141. [Google Scholar] [CrossRef]
- Wu, Y.; Cai, L.; Mei, C.; Lam, S.S.; Sonne, C.; Shi, S.Q.; Xia, C. Development and evaluation of zinc oxide-blended kenaf fiber biocomposite for automotive applications. Mater. Today Commun. 2020, 24, 101008. [Google Scholar] [CrossRef]
- Akande, I.G.; Kazeem, R.A.; Oluwole, O.O.; Jen, T.C.; Akinlabi, E.T. Production and characterization of low-density silicon nitride reinforced zinc nanocomposite coatings on mild steel for applications in marine and automotive industries. Heliyon 2024, 10, e36000. [Google Scholar] [CrossRef] [PubMed]
- Ezzat, H.A.; Sebak, M.A.; Aladim, A.K.; Shahat, M.A. Experimental and theoretical strategies for multidisciplinary PTFE@TiO2-based microfibres loaded with multiple metal oxides for anti-corrosion and self-cleaning aerospace applications. J. Inorg. Organomet. Polym. Mater. 2025, 35, 7820–7841. [Google Scholar] [CrossRef]
- Lee, B.R.; Goo, J.S.; Kim, Y.W.; You, Y.-J.; Kim, H.; Lee, S.-K.; Shim, J.W.; Kim, T.G. Highly efficient flexible organic photovoltaics using quasi-amorphous ZnO/Ag/ZnO transparent electrodes for indoor applications. J. Power Sources 2019, 417, 61–69. [Google Scholar] [CrossRef]
- Nkele, A.C.; Nwankwo, U.; Alshoaibi, A.; Ezema, F.I. One-step spin-coating of methylammonium lead iodide on SILAR-deposited tin oxide, SnO2 films for effective electron transport. Results Opt. 2023, 13, 100521. [Google Scholar] [CrossRef]
- Yadav, A.; Sayyed, M.I.; Ahmad, N.; Vargas-Portugal, S.K.; Alshehri, A.M.; Taki, A.G.; Thabit, R.; Adhab, A.H. Synergizing tin dioxide/perovskite interface with fluorine-doped zinc oxide for stabilized and efficient carbon-based perovskite solar cells. Opt. Mater. 2023, 144, 114325. [Google Scholar] [CrossRef]
- Ganesan, M.; Farooq, M.U.; Li, J.; Mohan, M.K.; Wang, F. Ultrasensitive gas sensor based on Gd modified SnO2 for nitrogen dioxide detection at low temperature. Sens. Actuators B Chem. 2025, 443, 138190. [Google Scholar] [CrossRef]
- Jayapandi, S.; Premkumar, S.; Ramakrishnan, V.; Lakshmi, D.; Shanavas, S.; Acevedo, R.; Anitha, K. Enhanced visible light photocatalytic performance of SnO2 nanoparticle co-doped with (Co, Nb) for organic dye degradation. J. Mater. Sci. Mater. Electron. 2020, 31, 10689–10701. [Google Scholar] [CrossRef]
- Kumari, K.; Mishra, S.R.; Gadore, V.; Moyon, N.S.; Ahmaruzzaman, M. Efficient visible-light photocatalysis using Fe-doped SnO2/chitosan composite for organic pollutant degradation: Mechanisms, reusability, and sustainability. J. Mater. Sci. Mater. Electron. 2025, 35, 6853–6876. [Google Scholar] [CrossRef]
- Bouras, D.; Fellah, M.; Mohammed, D.Z.; Barille, R.; Obrosov, A.; El-Hiti, G.A.; Guesmi, A.; Khezami, L. Enhanced CO2 sensing properties of Fe/Al-doped SnO2 thin films: A comprehensive study of structural, optical, and electrical characteristics. J. Alloys Compd. 2025, 1034, 181387. [Google Scholar] [CrossRef]
- Bekhoukh, A.; Moulefera, I.; Sabantina, L.; Benyoucef, A. Development, Investigation, and Comparative Study of the Effects of Various Metal Oxides on Optical Electrochemical Properties Using a Doped PANI Matrix. Polymers 2021, 13, 3344. [Google Scholar] [CrossRef] [PubMed]
- Christopoulos, S.; Angastiniotis, N.C.; Laux-Le Guyon, V.; Bsaibess, E.; Koutsokeras, L.; Duponchel, B.; El-Rifai, J.; Li, L.; Slimani, A. Comparative Study of Polyethylene Films Embedded with Oxide Nanoparticles of Granulated and Free-Standing Nature. Polymers 2022, 14, 2629. [Google Scholar] [CrossRef] [PubMed]
- Baziak, A.; Kusior, A. Comparative Study of Polymer-Modified Copper Oxide Electrochemical Sensors: Stability and Performance Analysis. Sensors 2024, 24, 5290. [Google Scholar] [CrossRef]
- Sengwa, R.J.; Dhatarwal, P.; Choudhary, S. A comparative study of different metal oxide nanoparticles dispersed PVDF/PEO blend matrix-based advanced multifunctional nanodielectrics for flexible electronic devices. Mater. Today Commun. 2020, 25, 101380. [Google Scholar] [CrossRef]
- Sengwa, R.J.; Dhatarwal, P.; Choudhary, S. Polymer nanocomposites comprising PMMA matrix and ZnO, SnO2, and TiO2 nanofillers: A comparative study of structural, optical, and dielectric properties for multifunctional technological applications. Opt. Mater. 2021, 113, 110837. [Google Scholar] [CrossRef]
- Arzac, A.; Leal, G.P.; Fajgar, R.; Tomovska, R. Comparison of the Emulsion Mixing and In Situ Polymerization Techniques for Synthesis of Water-Borne Reduced Graphene Oxide/Polymer Composites: Advantages and Drawbacks. Part. Part. Syst. Charact. 2014, 31, 200–208. [Google Scholar] [CrossRef]
- Bragg, W.L. The reflection of X-rays by crystals. Proc. R. Soc. A 1913, 88, 428–438. [Google Scholar] [CrossRef]
- Monshi, A.; Foroughi, M.R.; Monshi, M.R. Modified Scherrer Equation to Estimate More Accurately Nano-Crystallite Size Using XRD. World J. Nano Sci. Eng. 2012, 2, 154–160. [Google Scholar] [CrossRef]
- Sutapa, I.W.; Wahab, A.W.; Taba, P.; Nafie, N.L. Dislocation, crystallite size distribution and lattice strain of magnesium oxide nanoparticles. J. Phys. Conf. Ser. 2018, 979, 012021. [Google Scholar] [CrossRef]
- Manifacier, J.C.; Gasiot, J.; Fillard, J.P. A simple method for the determination of the optical constants n, k and the thickness of a weakly absorbing thin film. J. Phys. E Sci. Instrum. 1976, 9, 1002–1004. [Google Scholar] [CrossRef]
- Swanepoel, R. Determination of the thickness and optical constants of amorphous silicon. J. Phys. E Sci. Instrum. 1983, 16, 1214–1222. [Google Scholar] [CrossRef]
- Ghoubali, N.E.; Maaroufi, A.; Hamidi, A.E.; Amarani, A.E. Unlocking the energy potential of Moroccan bentonite clay: Structural, optical, and thermal insights for advanced applications. Discov. Appl. Sci. 2025, 7, 887. [Google Scholar] [CrossRef]
- Manifacier, J.C.; De Murcia, M.; Fillard, J.P.; Vicario, E. Optical and electrical properties of SnO2 thin films in relation to their stoichiometric deviation and their crystalline structure. Thin Solid Film. 1977, 41, 127–135. [Google Scholar] [CrossRef]
- Aly, S.A. Influence of film thickness on optical absorption and energy gap of thermally evaporated CdS0.1Se0.9 thin films. Chalcogenide Lett. 2015, 12, 489–496. [Google Scholar]
- Tauc, J.; Menth, A. States in the gap. J. Non-Cryst. Solids 1972, 8–10, 569–585. [Google Scholar] [CrossRef]
- Urbach, F. The long-wavelength edge of photographic sensitivity and of the electronic absorption of solids. Phys. Rev. 1953, 92, 1324. [Google Scholar] [CrossRef]
- Shao, J.; Liu, W.; Ding, J.; Wang, F.; Dong, J.; Zhang, J. Oxygen vacancy engineering of self-doped SnO2−x nanocrystals for ultrasensitive NO2 detection. J. Mater. Chem. C 2020, 8, 487–494. [Google Scholar] [CrossRef]
- Poloju, M.; Jayababu, N.; Manikandan, E.; Ramana Reddy, M.V. Enhancement of the isopropanol gas sensing performance of SnO2/ZnO core/shell nanocomposites. J. Mater. Chem. C 2017, 5, 1234–1240. [Google Scholar] [CrossRef]
- Liu, J.; Wang, W.; Yuen, R.K.K.; Gui, Z.; Hu, Y. 1/2D SnO2 nanowires on MnO2 nanosheets hybrid architecture for reducing fire hazards of epoxy nanocomposites. Compos. Part A Appl. Sci. Manuf. 2018, 107, 461–470. [Google Scholar] [CrossRef]
- Costa, I.M.; Colmenares, Y.N.; Pizani, P.S.; Leite, E.R.; Chiquito, A.J. Sb doping of VLS synthesized SnO2 nanowires probed by Raman and XPS spectroscopy. Chem. Phys. Lett. 2018, 695, 125–130. [Google Scholar] [CrossRef]
- Anu, M.A.; Pillai, S.S. Structure, thermal, optical and dielectric properties of SnO2 nanoparticles-filled HDPE polymer. Solid State Commun. 2022, 341, 114577. [Google Scholar] [CrossRef]
- Geetha Devi, P.; Sakthi Velu, A. Synthesis, structural and optical properties of pure ZnO and Co doped ZnO nanoparticles prepared by the co-precipitation method. J. Theor. Appl. Phys. 2016, 10, 233–240. [Google Scholar] [CrossRef]
- Salahuddin, N.; El-Kemary, M.; Ibrahim, E.M. High-performance flexible epoxy/ZnO nanocomposites with enhanced mechanical and thermal properties. Polym. Eng. Sci. 2017, 57, 2175–2184. [Google Scholar]
- Talam, S.; Karumuri, S.R.; Gunnam, N. Synthesis, characterization, and spectroscopic properties of ZnO nanoparticles. Int. Sch. Res. Not. 2012, 2012, 372505. [Google Scholar]
- Smith, B.C. The infrared spectra of polymers V: Epoxies. Spectroscopy 2022, 37, 17–19. [Google Scholar] [CrossRef]
- Mohanta, D.; Ahmaruzzaman, M. Biogenic synthesis of SnO2 quantum dots encapsulated carbon nanoflakes: An efficient integrated photocatalytic adsorbent for the removal of bisphenol A from aqueous solution. J. Alloys Compd. 2020, 828, 154093. [Google Scholar] [CrossRef]
- Zhang, Y.; Li, X.; Liu, Z. Blending modification of alicyclic resin and bisphenol A epoxy resin to enhance salt aging resistance for composite core rods. Polymers 2022, 14, 2394. [Google Scholar] [CrossRef]
- Ullah, R.; Wang, X. Molecular vibrations of bisphenol ‘S’ revealed by FTIR spectroscopy and their correlation with bisphenol ‘A’ disclosed by principal component analysis. Appl. Opt. 2018, 57, 4884–4891. [Google Scholar] [CrossRef]
- Şomoghi, R.; Mihai, S.; Teodorescu, G.-M.; Vuluga, Z.; Gabor, A.R.; Nicolae, C.-A.; Trică, B.; Stănescu Vătău, D.M.; Oancea, F.; Stănciulescu, C.M. Influence of HNT-ZnO nanofillers on the performance of epoxy resin composites for marine applications. Coatings 2024, 14, 532. [Google Scholar] [CrossRef]
- Baghdadi, Y.N.; Youssef, L.; Bouhadir, K.; Harb, M.; Mustapha, S.; Patra, D.; Tehrani-Bagha, A.R. The effects of modified zinc oxide nanoparticles on the mechanical/thermal properties of epoxy resin. J. Appl. Polym. Sci. 2020, 137, 49330. [Google Scholar] [CrossRef]
- Bashir, S.; Awan, M.S.; Farrukh, M.A.; Naidu, R.; Khan, S.A.; Rafique, N.; Ali, S.; Hayat, I.; Hussain, I.; Khan, M.Z. In-vivo (Albino mice) and in-vitro assimilation and toxicity of zinc oxide nanoparticles in food materials. Nanomaterials 2022, 12, 4073. [Google Scholar] [CrossRef] [PubMed]
- Aboorvakani, R.; Vethanathan, S.J.K.; Madhu, K.U. Influence of Zn concentration on zinc oxide nanoparticles and their anti-corrosion property. J. Alloys Compd. 2020, 834, 155078. [Google Scholar] [CrossRef]
- Bascheka, G.; Hartwiga, G.; Zahradnik, F. Effect of water absorption in polymers at low and high temperatures. Polymer 1999, 40, 3433–3441. [Google Scholar] [CrossRef]
- Effendy, N.; Sidek, H.A.A.; Halimah, M.K.; Zaid, M.H.M. Enhancement on thermal, elastic and optical properties of new formulation tellurite glasses: Influence of ZnO as a glass modifier. Mater. Chem. Phys. 2021, 273, 125156. [Google Scholar] [CrossRef]
- Chandrasekar, L.B.; Nagarajan, S.; Karunakaran, M.; Thangadurai, T.D. Structural, optical and electrical properties of undoped and doped ZnO thin films. In 2D Materials; IntechOpen: London, UK, 2019. [Google Scholar] [CrossRef]
- Ammaih, Y.; Hartiti, B.; Ridah, A.; Lfakir, A.; Soucase, B.M.; Thevenin, P. Effect of F-doping on structural, electrical, and optical properties of ZnO thin films for optoelectronic application. In Proceedings of the 2016 International Renewable and Sustainable Energy Conference (IRSEC), Marrakech, Morocco, 14–17 November 2016. [Google Scholar] [CrossRef]
- Sivakumar, P.; Akkera, H.S.; Kumar Reddy, T.R.; Bitla, Y.; Ganesh, V.; Mohan Kumar, P.; Srinivas Reddy, G.; Poloju, M. Effect of Ti doping on structural, optical and electrical properties of SnO2 transparent conducting thin films deposited by sol-gel spin coating. Opt. Mater. 2021, 113, 110845. [Google Scholar] [CrossRef]
- Muheddin, D.Q.; Aziz, S.B.; Mohammed, P.A. Variation in the Optical Properties of PEO-Based Composites via a Green Metal Complex: Macroscopic Measurements to Explain Microscopic Quantum Transport from the Valence Band to the Conduction Band. Polymers 2023, 15, 771. [Google Scholar] [CrossRef]
- Jasim, F.A.; Hassan, T.A.A. Study the Structural and Optical Properties (Energy Gap) of Polythiophene/MWCNT/SnO2 Nanocomposite as an NO2 Gas Sensor. Iraqi J. Phys. 2024, 22, 79–87. [Google Scholar] [CrossRef]
- Atisme, B.; Yu, C.-Y.; Tseng, E.N.; Chen, Y.-C.; Shu, P.-K.; Chen, S.-Y. Interface Interactions in Conjugated Polymer Composite with Metal Oxide Nanoparticles. Nanomaterials 2019, 9, 1534. [Google Scholar] [CrossRef]
- Mamand, D.M.; Aziz, D.M.; Khasraw, S.S.; Al-Azzawi, A.G.S.; Al-Saeedi, S.I.; Aziz, S.B.; Hassan, J. Improved optical characteristics of PEO polymer integrated with graphene oxide. Sci. Rep. Aug. 2025, 15, 16778. [Google Scholar] [CrossRef]
- Li, X.; Xiong, J.; Tang, Z.; He, W.; Wang, Y.; Wang, X.; Zhao, Z.; Wei, Y. Recent progress in metal oxide-based photocatalysts for CO2 reduction to solar fuels: A review. Molecules 2023, 28, 1653. [Google Scholar] [CrossRef]
- Khan, D.; Rehman, A.; Rafiq, M.Z.; Khan, A.M.; Ali, M. Improving the optical properties of SnO2 nanoparticles through Ni doping by sol-gel technique. Curr. Res. Green Sustain. Chem. 2021, 4, 100079. [Google Scholar] [CrossRef]
- Archana, K.J.; Preetha, A.C.; Balasubramanian, K. Influence of Urbach energy in enhanced photocatalytic activity of Cu doped ZnO nanoparticles. Opt. Mater. 2022, 127, 112245. [Google Scholar] [CrossRef]
- Ikhmayies, S.J.; Ahmad-Bitar, R.N. An investigation of the bandgap and Urbach tail of vacuum-evaporated SnO2 thin films. Renew. Energy 2013, 49, 143–146. [Google Scholar] [CrossRef]











| Films | Mean Crystallite Size DC (nm) | Dislocation Density δ (nm−3) |
|---|---|---|
| Ep/SnO2 (0.15 vol.fr) | 22.59 | 1.96 × 10−3 |
| Ep/ZnO (0.15 vol.fr) | 30.90 | 1.05 × 10−3 |
| Wavenumber (cm−1) | Assignments |
|---|---|
| 760, 1472 | Sn–O stretching vibration (SnO2) |
| 1514 | Aromatic C=C stretching (bisphenol A/epoxy matrix) |
| 830 | C–O–C stretching of the epoxy ring (oxirane) |
| 1040, 1180, 1260 | C–O–C stretching (ether and epoxy ring vibrations) |
| 1740 | C=O stretching (carbonyl groups: esters/acids) |
| 2030, 2160 | C≡C or C≡N stretching (alkyne or nitrile groups) |
| 1899 | C=O stretching (ester-type carbonyl) |
| 1770 | C=O stretching (aryl–alkyl ester) |
| 1635 | Aromatic C=C stretching (bisphenol A) |
| 1466 | Aromatic C=C stretching (epoxy aromatic groups) |
| 1292, 1236, 890 | –C–O stretching/deformation (ether and epoxy groups) |
| 1033 | Zn–O bonding characteristic peaks (ZnO) |
| Films | Befor Wdry (g) | After Wwet (g) | Aw/Month (%) |
|---|---|---|---|
| Neat epoxy | 0.4152 | 0.4154 | 0.0481 |
| Ep/SnO2 0.05 vol.fr | 0.4191 | 0.4194 | 0.0715 |
| Ep/SnO2 0.1 vol.fr | 0.436 | 0.4362 | 0.0458 |
| Ep/SnO2 0.15 vol.fr | 0.4373 | 0.4374 | 0.0228 |
| Ep/ZnO 0.05 vol.fr | 0.4253 | 0.4255 | 0.0470 |
| Ep/ZnO 0.1 vol.fr | 0.4315 | 0.4316 | 0.0231 |
| Ep/ZnO 0.15 vol.fr | 0.4372 | 0.4375 | 0.0686 |
| Ep/Oxides Film | Thickness (nm) | Band Gap (eV) | Power Factor (n) | Tauc Slop (eV.cm−1)1/n | Correlation Coefficient R2 | Urbach Energy (eV) |
|---|---|---|---|---|---|---|
| Neat Epoxy | 5154 | 3.14 | 0.5 | 9.5343 × 106 | 0.98 | 0.22 |
| Ep/SnO2 (0.05 vol.fr) | 5306 | 3.17 | 0.5 | 4.8922 × 106 | 0.96 | 0.34 |
| Ep/SnO2 (0.10 vol.fr) | 4172 | 3.38 | 2 | 18.0203 × 102 | 0.96 | 0.47 |
| Ep/SnO2 (0.15 vol.fr) | 8543 | 3.10 | 2 | 54.8732 × 102 | 0.97 | 1.77 |
| Ep/ZnO (0.05 vol.fr) | 3422 | 2.87 | 2 | 36.583 × 102 | 0.95 | 0.19 |
| Ep/ZnO (0.10 vol.fr) | 7708 | 2.75 | 2 | 25.686 × 102 | 0.96 | 0.36 |
| Ep/ZnO (0.15 vol.fr) | 9306 | 2.82 | 2 | 18.0823 × 102 | 0.96 | 0.54 |
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. |
© 2025 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.
Share and Cite
El Ghoubali, N.; El Hamidi, A.; El Haimeur, A.; Nouneh, K.; Maaroufi, A. Metals Oxides-Reinforced Epoxy Nanocomposites for Energy Applications: A First Comparative Study of the Structural and Optical Properties of SnO2 and ZnO Oxides. Appl. Nano 2026, 7, 2. https://doi.org/10.3390/applnano7010002
El Ghoubali N, El Hamidi A, El Haimeur A, Nouneh K, Maaroufi A. Metals Oxides-Reinforced Epoxy Nanocomposites for Energy Applications: A First Comparative Study of the Structural and Optical Properties of SnO2 and ZnO Oxides. Applied Nano. 2026; 7(1):2. https://doi.org/10.3390/applnano7010002
Chicago/Turabian StyleEl Ghoubali, Noura, Adnane El Hamidi, Amine El Haimeur, Khalid Nouneh, and Abdelkrim Maaroufi. 2026. "Metals Oxides-Reinforced Epoxy Nanocomposites for Energy Applications: A First Comparative Study of the Structural and Optical Properties of SnO2 and ZnO Oxides" Applied Nano 7, no. 1: 2. https://doi.org/10.3390/applnano7010002
APA StyleEl Ghoubali, N., El Hamidi, A., El Haimeur, A., Nouneh, K., & Maaroufi, A. (2026). Metals Oxides-Reinforced Epoxy Nanocomposites for Energy Applications: A First Comparative Study of the Structural and Optical Properties of SnO2 and ZnO Oxides. Applied Nano, 7(1), 2. https://doi.org/10.3390/applnano7010002

