Electrodeposited WO₃ on Stainless Steel as a High-Energy Supercapacitor Electrode
Yıl 2025,
Cilt: 6 Sayı: 1, 86 - 94, 30.06.2025
Hasan Emir Kirtay
,
Semih İlkay Tezcan
,
Seyit Rıza Tokgöz
,
Ahmet Peksöz
Öz
Tungsten oxide (WO₃) thin films were successfully deposited onto stainless steel (SS) substrates via an electrochemical deposition method. The structural and electrochemical characteristics of the resulting WO₃/SS electrode were systematically investigated using a three-electrode configuration in an aqueous electrolyte. Cyclic voltammetry (CV) measurements revealed that the electrode maintains a wide electrochemical stability window of approximately 1.2 V, indicative of its suitability for high-energy applications. At a scan rate of 10 mV s⁻¹, the WO₃/SS electrode delivered a high specific capacitance of 652.9 F g⁻¹, reflecting excellent charge storage capability. Galvanostatic charge-discharge (GCD) tests performed at a current density of 1 A g⁻¹ yielded an impressive energy density of 139.9 Wh kg⁻¹ and a corresponding power density of 7160.6 W kg⁻¹. Moreover, the electrode retained a high Coulombic efficiency of 98.2% after 10,000 continuous GCD cycles, highlighting its outstanding cycling stability. These results demonstrate that the WO₃/SS electrode is a promising candidate for next-generation supercapacitor devices, offering both high energy and power densities along with long-term durability.
Kaynakça
-
[1] González, A., Goikolea, E., Barrena, J.A., and Mysyk, R., Review on supercapacitors: Technologies and materials, Renewable and Sustainable Energy Reviews, 58, 1189–1206, (2016).
-
[2] Simon, P., and Gogotsi, Y., Materials for electrochemical capacitors, Nature Materials, 7, 845–854, (2008).
-
[3] Wang, Q., and O’Hare, D., Recent advances in the synthesis and application of layered double hydroxide (LDH) nanosheets, Chemical Reviews, 112, 4124–4155, (2012).
-
[4] Konar, R., and Nessim, G.D., A mini-review focusing on ambient-pressure chemical vapor deposition (AP-CVD) based synthesis of layered transition metal selenides for energy storage applications, Materials Advances, 3, 4471-4488, (2022).
-
[5] Lokhande, V.,, Lokhande, A., Namkoong, G., Hyeok, J.K., and Ji, T., Charge storage in WO3 polymorphs and their application as supercapacitor electrode material, Results in Physics, 12, 2012-2020, (2019).
-
[6] Schoetz, T., Gordon, L.W., Ivanov, S., Bund, A., Mandler, D., and Messinger, R.J., Disentangling faradaic, pseudocapacitive, and capacitive charge storage: A tutorial for the characterization of batteries, supercapacitors, and hybrid systems, Electrochimica Acta, 412, 140072, (2022).
-
[7] Li, W.J., and Fu, Z.W., Nanostructured WO3 thin film as a new anode material for lithium-ion batteries, Applied Surface Science, 256(8), 2447-2452, (2010).
-
[8] Omrani, M., Habibi, M., Amrollahi, R., and Khosravi, A., Improvement of corrosion and electrical conductivity of 316L stainless steel as bipolar plate by TiN nanoparticle implantation using plasma focus, International Journal of Hydrogen Energy, 37(19), 14676-14686, (2012).
-
[9] Patil, S.J., Dubal, D.P., and Lee, D.W., Gold nanoparticles decorated rGO-ZnCo2O4
nanocomposite: A promising positive electrode for high performance hybrid supercapacitors, Chemical Engineering Journal, 379, 122211, (2020).
-
[10] Torun, H., Tokgöz, S.R., Arslan Çarpan, M., Somay, M.H., Peksöz, A., Fabrication of a high-performance symmetrical supercapacitor based on electrochemically interconnected Cu:NiO@rGO:PANI/NF electrodes, Journal of Energy Storage, 88, 111462, (2024).
-
[11] Huo, W.C., Liu, X.L., Yuan, Y.S., Li, N., Lan, T., Liu, X.Y., Zhang, Y.X., Facile synthesis of manganese cobalt oxide/nickel cobalt oxide composites for high-performance supercapacitors, Frontiers in Chemistry, 6, 661, (2019).
-
[12] Yu, Y., Xu, A., Zhang, Y., Zhao, Z., Ye, S., Qin, Y., Construction of hierarchical graphene/polyaniline@polyaniline electrodes by chemical and electrochemical polymerization for high-energy supercapacitors, Electrochimica Acta, 454, 142414, (2023).
-
[13] Rani, R., Kumar, A., Sharma, M., Mohan, B., Kumar, R., Chandra, R., Malik, V.K., Investigation of electrochemical properties of Pt-WO3 nanocomposite thin films for supercapacitor applications, 197, 112428, (2025).
Electrodeposited WO₃ on Stainless Steel as a High-Energy Supercapacitor Electrode
Yıl 2025,
Cilt: 6 Sayı: 1, 86 - 94, 30.06.2025
Hasan Emir Kirtay
,
Semih İlkay Tezcan
,
Seyit Rıza Tokgöz
,
Ahmet Peksöz
Öz
Tungsten oxide (WO₃) thin films were successfully deposited onto stainless steel (SS) substrates via an electrochemical deposition method. The structural and electrochemical characteristics of the resulting WO₃/SS electrode were systematically investigated using a three-electrode configuration in an aqueous electrolyte. Cyclic voltammetry (CV) measurements revealed that the electrode maintains a wide electrochemical stability window of approximately 1.2 V, indicative of its suitability for high-energy applications. At a scan rate of 10 mV s⁻¹, the WO₃/SS electrode delivered a high specific capacitance of 652.9 F g⁻¹, reflecting excellent charge storage capability. Galvanostatic charge-discharge (GCD) tests performed at a current density of 1 A g⁻¹ yielded an impressive energy density of 139.9 Wh kg⁻¹ and a corresponding power density of 7160.6 W kg⁻¹. Moreover, the electrode retained a high Coulombic efficiency of 98.2% after 10,000 continuous GCD cycles, highlighting its outstanding cycling stability. These results demonstrate that the WO₃/SS electrode is a promising candidate for next-generation supercapacitor devices, offering both high energy and power densities along with long-term durability.
Destekleyen Kurum
No financial support has been received for the study.
Kaynakça
-
[1] González, A., Goikolea, E., Barrena, J.A., and Mysyk, R., Review on supercapacitors: Technologies and materials, Renewable and Sustainable Energy Reviews, 58, 1189–1206, (2016).
-
[2] Simon, P., and Gogotsi, Y., Materials for electrochemical capacitors, Nature Materials, 7, 845–854, (2008).
-
[3] Wang, Q., and O’Hare, D., Recent advances in the synthesis and application of layered double hydroxide (LDH) nanosheets, Chemical Reviews, 112, 4124–4155, (2012).
-
[4] Konar, R., and Nessim, G.D., A mini-review focusing on ambient-pressure chemical vapor deposition (AP-CVD) based synthesis of layered transition metal selenides for energy storage applications, Materials Advances, 3, 4471-4488, (2022).
-
[5] Lokhande, V.,, Lokhande, A., Namkoong, G., Hyeok, J.K., and Ji, T., Charge storage in WO3 polymorphs and their application as supercapacitor electrode material, Results in Physics, 12, 2012-2020, (2019).
-
[6] Schoetz, T., Gordon, L.W., Ivanov, S., Bund, A., Mandler, D., and Messinger, R.J., Disentangling faradaic, pseudocapacitive, and capacitive charge storage: A tutorial for the characterization of batteries, supercapacitors, and hybrid systems, Electrochimica Acta, 412, 140072, (2022).
-
[7] Li, W.J., and Fu, Z.W., Nanostructured WO3 thin film as a new anode material for lithium-ion batteries, Applied Surface Science, 256(8), 2447-2452, (2010).
-
[8] Omrani, M., Habibi, M., Amrollahi, R., and Khosravi, A., Improvement of corrosion and electrical conductivity of 316L stainless steel as bipolar plate by TiN nanoparticle implantation using plasma focus, International Journal of Hydrogen Energy, 37(19), 14676-14686, (2012).
-
[9] Patil, S.J., Dubal, D.P., and Lee, D.W., Gold nanoparticles decorated rGO-ZnCo2O4
nanocomposite: A promising positive electrode for high performance hybrid supercapacitors, Chemical Engineering Journal, 379, 122211, (2020).
-
[10] Torun, H., Tokgöz, S.R., Arslan Çarpan, M., Somay, M.H., Peksöz, A., Fabrication of a high-performance symmetrical supercapacitor based on electrochemically interconnected Cu:NiO@rGO:PANI/NF electrodes, Journal of Energy Storage, 88, 111462, (2024).
-
[11] Huo, W.C., Liu, X.L., Yuan, Y.S., Li, N., Lan, T., Liu, X.Y., Zhang, Y.X., Facile synthesis of manganese cobalt oxide/nickel cobalt oxide composites for high-performance supercapacitors, Frontiers in Chemistry, 6, 661, (2019).
-
[12] Yu, Y., Xu, A., Zhang, Y., Zhao, Z., Ye, S., Qin, Y., Construction of hierarchical graphene/polyaniline@polyaniline electrodes by chemical and electrochemical polymerization for high-energy supercapacitors, Electrochimica Acta, 454, 142414, (2023).
-
[13] Rani, R., Kumar, A., Sharma, M., Mohan, B., Kumar, R., Chandra, R., Malik, V.K., Investigation of electrochemical properties of Pt-WO3 nanocomposite thin films for supercapacitor applications, 197, 112428, (2025).