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Kazemi, S. H., Sanjeri, E., Kavarizadeh, Y. & Alinejadian, N. (2026). High-performance supercapacitors: Leveraging electrohydrothermal synthesis of tailored MnO2/Co3O4 nanostructures. Chemical Engineering Journal Advances, 26, Article ID 101110.
Open this publication in new window or tab >>High-performance supercapacitors: Leveraging electrohydrothermal synthesis of tailored MnO2/Co3O4 nanostructures
2026 (English)In: Chemical Engineering Journal Advances, E-ISSN 2666-8211, Vol. 26, article id 101110Article in journal (Refereed) Published
Abstract [en]

In this work, we utilize the electrohydrothermal (EHT) approach, as a versatile synthesis approach, for fabricating MnO2-decorated Co3O4 (MnO2/Co3O4) composites for supercapacitor applications. This method leverages the strengths of both electrochemical deposition (ED) and hydrothermal (HT) synthesis, offering precise control and high efficiency. Co3O4 and MnO2 are potential candidates for electrode materials in energy storage systems due to their high theoretical capacity, biocompatibility, abundance in nature, and cost-effectiveness. Bimetallic oxide nanocomposites are highly attractive for supercapacitor applications due to integration of multiple redox-active centers with improved electrical conductivity, resulting in higher specific capacitance, improved rate capability, and superior cycling stability. Using EHT approach, hydrothermal conditions were applied in the first step while cobalt hydroxide layer was deposited on Ni foam substrate (NF). The resulting Co(OH)2/NF electrode was subsequently subjected to heat treatment to form the Co3O4/NF electrode. In the second step, the electrodeposition of MnO₂ was performed in the optimized EHT conditions by applying a constant cathodic potential, yielding the MnO2/Co3O4/NF electrode. Notably, MnO2/Co3O4/NF electrode exhibited an ultrahigh specific capacitance of 1207 F g-1 at a high current density of 6 A g-1, along with a 62% rate capability when the current density was increased from 6 to 25 A g-1. Besides, the electrode materials demonstrated excellent cycling stability and capacitance retention of almost 91% beyond 10,000 successive cycles. Furthermore, an asymmetric capacitor (ASC) was fabricated using MnO2/Co3O4/NF as positive electrode and 6 M of KOH as electrolyte to evaluate its electrochemical performance. The ASC device delivered an impressive energy and power densities of 54.8 Wh kg-1 and 44.14 kW kg-1, respectively. Our findings corroborate the superior capacitive performance of MnO2/Co3O4 electrode materials fabricated by an electrohydrothermal approach. 

Place, publisher, year, edition, pages
Elsevier BV, 2026
Keywords
Co3O4, Electrohydrothermal, MnO2, Nanomaterials, Supercapacitor
National Category
Materials Chemistry
Identifiers
urn:nbn:se:kth:diva-378149 (URN)10.1016/j.ceja.2026.101110 (DOI)001710578100001 ()2-s2.0-105031575228 (Scopus ID)
Note

QC 20260323

Available from: 2026-03-23 Created: 2026-03-23 Last updated: 2026-03-23Bibliographically approved
Alinejadian, N., Odnevall, I., Meisnar, M. & Jafari, D. (2025). Transition Metal Dichalcogenide-Based Composites in Powder Bed Additive Manufacturing for Electrochemical Applications—A Review. Advanced Materials Technologies, 10(9), Article ID 2401251.
Open this publication in new window or tab >>Transition Metal Dichalcogenide-Based Composites in Powder Bed Additive Manufacturing for Electrochemical Applications—A Review
2025 (English)In: Advanced Materials Technologies, E-ISSN 2365-709X, Vol. 10, no 9, article id 2401251Article, review/survey (Refereed) Published
Abstract [en]

Robust electrochemical sustainability of tailored high-performance nanocomposites is integral to advanced electrochemical energy conversion and storage (EECS) systems. Functions, such as nanoscale ionic-diffusion distance, electrocatalytic reactions, electrical conductivity, and fluid distribution, of transition metal dichalcogenide (TMD)-based nanostructures have been extensively designed and studied. However, challenges in materials selection, operational scalability, and design flexibility of TMD-incorporated metal-matrix composites (MMCs) consisting of non-noble metallic nanostructures and their originating TMD materials have scarcely been studied. Highlighting the effectiveness of emerging additive manufacturing techniques in sustainable energy supply and storage, laser powder bed fusion (L-PBF) can offer a directly added dual-functionality to fabricated complex multimaterial and TMD-incorporated MMC electrocatalytic electrodes. In this review, the characteristics of composite powder feedstock and optimizing process parameters are critically emphasized from another perspective to maintain a balance between mechanical robustness and enhanced electrochemical response. It is demonstrated how factors such as surface roughness, particle shape, and rheological characteristics of TMDs can influence the flowability of composite powder feedstock and the electrochemical performance of L-PBF-processed electrodes. The review further aims to contribute compiled information for use in the rapidly growing global market for advanced energy storage systems, underscoring the transformative potential of L-PBF and TMD-incorporated MMCs in modernizing the EECS components.

Place, publisher, year, edition, pages
Wiley, 2025
Keywords
2D nanomaterials, additive manufacturing, electrochemical energy storage, metal matrix composite, powder bed fusion, transition metal dichalcogenide
National Category
Manufacturing, Surface and Joining Technology Materials Chemistry
Identifiers
urn:nbn:se:kth:diva-367297 (URN)10.1002/admt.202401251 (DOI)001373870300001 ()2-s2.0-85211368429 (Scopus ID)
Note

QC 20250716

Available from: 2025-07-16 Created: 2025-07-16 Last updated: 2025-07-16Bibliographically approved
Alinejadian, N., Kazemi, S. H., Nasirpouri, F. & Odnevall, I. (2023). Electro-deposited nano-Ni/reduced graphene oxide composite film of corrugated surface for high voltammetric sensitivity. Materials Chemistry and Physics, 297, 127288, Article ID 127288.
Open this publication in new window or tab >>Electro-deposited nano-Ni/reduced graphene oxide composite film of corrugated surface for high voltammetric sensitivity
2023 (English)In: Materials Chemistry and Physics, ISSN 0254-0584, E-ISSN 1879-3312, Vol. 297, p. 127288-, article id 127288Article in journal (Refereed) Published
Abstract [en]

Reduced graphene oxide (rGO) is an ideal candidate in nanostructured metallic materials to enhance their electrochemical performance. However, few studies exist on the effects of rGO on the crystallographic, physical, and topological properties of co-electrodeposited Ni/rGO nanocomposites. In this study, the morphology and normalized electro-active specific surface (NESS) of a Ni/rGO nanocomposite were correlated with its crystal-lographic properties by varying the applied co-electrodeposition current density (0.01-0.1 A cm(-2)) and rGO concentration (0.5-2 mg mL(-1)). Tuning was done to achieve the best physical and electrochemical properties of the nanocomposite at alkaline (NaOH) conditions in terms of the highest NESS (12.3 x 10(-4)) and electro-active sensitivity (17.3 mu A mM(-1) cm(-2)) possible. The findings of the study show a possible approach to enhance the performance of electro-active components such as electrochemical devices, sensors, and actuators.

Place, publisher, year, edition, pages
Elsevier BV, 2023
Keywords
Nickel, Reduced graphene oxide, Nanosheet, Nanocomposite film, Co-electrodeposition, Novel three-dimensional morphology, Electro-active sensitivity, Voltammetric sensitivity, Electrochemical actuators, Electrochemcial sensors, 2D nanomaterials
National Category
Materials Chemistry Nano Technology
Identifiers
urn:nbn:se:kth:diva-324468 (URN)10.1016/j.matchemphys.2022.127288 (DOI)000922124200001 ()2-s2.0-85146149444 (Scopus ID)
Note

QC 20230403

Available from: 2023-04-03 Created: 2023-04-03 Last updated: 2023-04-03Bibliographically approved
Alinejadian, N., Kazemi, S. H., Grossberg-Kuusk, M., Kollo, L., Odnevall, I. & Prashanth, K. G. (2022). Importance of the micro-lattice structure of selective laser melting processed Mo/Mo(x)S(x+1) composite: Corrosion studies on the electrochemical performance in aqueous solutions. Materials Today Chemistry, 26, Article ID 101219.
Open this publication in new window or tab >>Importance of the micro-lattice structure of selective laser melting processed Mo/Mo(x)S(x+1) composite: Corrosion studies on the electrochemical performance in aqueous solutions
Show others...
2022 (English)In: Materials Today Chemistry, E-ISSN 2468-5194, Vol. 26, article id 101219Article in journal (Refereed) Published
Abstract [en]

Selective laser melting (SLM) based processing of Mo-based samples is challenging due to solidification cracking. We here demonstrate that the addition of 2 wt% MoS2 to the Mo feedstock markedly improves crack mitigation of SLM-processed Mo/MoS2/Mo2S3 composite micro-lattice structures (SLM-Mo/ Mo(x)S(x+1)). Crack inhibition is suggested to be a result of Mo2S3 formation, decreased lattice strain (0.04 4%), and a decrease in accumulated residual stresses. The increased values of polarization resistance from 42.3 and 19.2 kU cm2 to 437 and 78.2 kU cm2, respectively verified the hindering effect of the composition on stress corrosion cracking (SCC) and surface oxidation cracking. However, an increased corrosion current density, from 1.22 to 10.2 mA/cm2, and cathodic Tafel constant, from 175 to 260.5 mV, confirmed the decreased polarization resistance and occurrence of different types of corrosion such as SCC and pitting. The strategy to add 2 wt% MoS2 to the Mo feedstock enables the fabrication of hightemperature micro-lattice structure components with improved corrosion resistance properties applicable in e.g., electronic, power semiconductor heat sinks, offshore-, aerospace-, defense-, or particularly novel sodium-ion energy storage applications.

Place, publisher, year, edition, pages
Elsevier BV, 2022
Keywords
Additive manufacturing, SLM, Molybdenum, MoS2, Novel composite, Corrosion resistivity, Sustainable 3D printing
National Category
Surface- and Corrosion Engineering Composite Science and Engineering
Identifiers
urn:nbn:se:kth:diva-322855 (URN)10.1016/j.mtchem.2022.101219 (DOI)000877684800006 ()2-s2.0-85140319422 (Scopus ID)
Note

QC 20230109

Available from: 2023-01-09 Created: 2023-01-09 Last updated: 2025-02-09Bibliographically approved
Alinejadian, N., Kollo, L. & Odnevall Wallinder, I. (2022). Progress in additive manufacturing of MoS2-based structures for energy storage applications - A review. Materials Science in Semiconductor Processing, 139, Article ID 106331.
Open this publication in new window or tab >>Progress in additive manufacturing of MoS2-based structures for energy storage applications - A review
2022 (English)In: Materials Science in Semiconductor Processing, ISSN 1369-8001, E-ISSN 1873-4081, Vol. 139, article id 106331Article, review/survey (Refereed) Published
Abstract [en]

Investigation of next-generation manufacturing methods for the processing of functional materials and offering products with improved performance/functionalities has always been a challenge in terms of energy efficiency, cost-effectiveness, and eco-friendliness. Additive manufacturing (AM) attributes to rapid prototyping techniques that provide new opportunities to test new concepts and design complex 3D structures from metals, ceramics, and composites. Moreover, as a well-known transition metal dichalcogenide, Molybdenum disulfide (MoS2) is a two-dimensional (2D) material with outstanding electrochemical, physical, and mechanical properties that make it a potential candidate for energy storage electrodes via intercalation of different H+, Li+, Na+, and K+ cations. In this review, we discuss the existing conventional MoS2-processing methodologies and compare them with the novel additive manufacturing processes (especially laser-based powder bed fusion). The authors are convinced that the processing of prominent MoS2-based functional structures by the novel additive manufacturing processes can provide complex structures for different electrochemical applications, particularly for energy conversion/ storage systems.

Place, publisher, year, edition, pages
Elsevier BV, 2022
Keywords
Additive manufacturing, Laser-based powder bed fusion, Selective laser melting, Two-dimensional materials, MoS2, Electrochemistry, Electrochemical energy conversion/storage, Novel energy storage systems, Electrochemical applications
National Category
Manufacturing, Surface and Joining Technology
Identifiers
urn:nbn:se:kth:diva-307035 (URN)10.1016/j.mssp.2021.106331 (DOI)000734885200001 ()2-s2.0-85120040765 (Scopus ID)
Note

QC 20220111

Available from: 2022-01-11 Created: 2022-01-11 Last updated: 2022-06-25Bibliographically approved
Alinejadian, N., Kazemi, S. H. & Odnevall Wallinder, I. (2022). SLM-processed MoS2/Mo2S3 nanocomposite for energy conversion/storage applications. Scientific Reports, 12(1), Article ID 5030.
Open this publication in new window or tab >>SLM-processed MoS2/Mo2S3 nanocomposite for energy conversion/storage applications
2022 (English)In: Scientific Reports, E-ISSN 2045-2322, Vol. 12, no 1, article id 5030Article in journal (Refereed) Published
Abstract [en]

MoS2-based nanocomposites have been widely processed by a variety of conventional and 3D printing techniques. In this study, selective laser melting (SLM) has for the first time successfully been employed to tune the crystallographic structure of bulk MoS2 to a 2H/1T phase and to distribute Mo2S3 nanoparticles in-situ in MoS2/Mo2S3 nanocomposites used in electrochemical energy conversion/storage systems (EECSS). The remarkable results promote further research on and elucidate the applicability of laser-based powder bed processing of 2D nanomaterials for a wide range of functional structures within, e.g., EECSS, aerospace, and possibly high-temperature solid-state EECSS even in space.

Place, publisher, year, edition, pages
Nature Research, 2022
National Category
Materials Chemistry
Identifiers
urn:nbn:se:kth:diva-311542 (URN)10.1038/s41598-022-08921-7 (DOI)000772605500126 ()35322135 (PubMedID)2-s2.0-85126885367 (Scopus ID)
Note

QC 20220429

Available from: 2022-04-29 Created: 2022-04-29 Last updated: 2022-09-15Bibliographically approved
Alinejadian, N., Nasirpouri, F., Yus, J. & Ferrari, B. (2021). Reduction-based engineering of three-dimensional morphology of Ni-rGO nanocomposite. Materials Science & Engineering: B. Solid-state Materials for Advanced Technology, 271, Article ID 115259.
Open this publication in new window or tab >>Reduction-based engineering of three-dimensional morphology of Ni-rGO nanocomposite
2021 (English)In: Materials Science & Engineering: B. Solid-state Materials for Advanced Technology, ISSN 0921-5107, E-ISSN 1873-4944, Vol. 271, article id 115259Article in journal (Refereed) Published
Abstract [en]

Relying on the reduction of oxygenated functional groups of graphene oxide, the engineering of the morphology of Ni-based reduced graphene oxide (Ni-rGO) nanocomposite was carried out via galvanostatic electrochemical co-deposition by changing the current density in a range of 0.001-0.01 A.cm(-2) and loading of 2 g.L-1 of graphene oxide. The morphology has been converted to a porous, rough, and three-dimensional (3D) form by significant incorporation and simultaneous reduction of GO into the structure of Ni-rGO nanocomposite film. Study on 3D morphology by SEM, FT-IR, XRD, and Raman confocal spectroscopy approved simultaneously reduction of oxygenated functional groups. Moreover, we have discussed the impact of rGO incorporated in the structure of Ni-rGO nanocomposite onto the creation of porous 3D-morphology and the enhancement of the electroactive specific surface. This new fascinating mechanism and structure can lead to the enhancement of electroactive components in electrochemical sensors and energy conversion-storage systems.

Place, publisher, year, edition, pages
Elsevier BV, 2021
Keywords
Nickel, Graphene oxide, Nanosheet, Nanoplatelet, Nanocomposite film, Co-electrodeposition, Novel three-dimensional morphology
National Category
Materials Chemistry
Identifiers
urn:nbn:se:kth:diva-300963 (URN)10.1016/j.mseb.2021.115259 (DOI)000687713700003 ()2-s2.0-85107690262 (Scopus ID)
Note

QC 20210903

Available from: 2021-09-03 Created: 2021-09-03 Last updated: 2024-03-18Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0003-2316-7869

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