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Hotma Renta
Department of Physics, The Republic of Indonesia Defense University, Kawasan IPSC Sentul, Bogor 16810, Indonesia

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Recent Advances in Nickel Ferrite-Polymer Nanocomposites for Radar Absorbing Material Applications Thesalonika Br Panjaitan; Alya Hijrianisa; Yusuf Bramastya Apriliyanto; Dea Dwi Ananda; Rahmat Basuki; Hotma Renta
Sorption Studies Vol. 1 No. 2 (2025): Sorption Studies, December 2025
Publisher : Indonesian Scholar Society

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.55749/ss.v1i2.125

Abstract

Nickel ferrite (NiFe₂O₄) and its polymer-based composites have emerged as promising candidates for radar absorbing materials (RAMs) due to their unique combination of magnetic and dielectric loss mechanisms. This review highlights recent advances in synthesis strategies, including sol–gel, hydrothermal, co-precipitation, and microwave-assisted methods, which enable precise control of particle size, morphology, and crystallographic defects. Such control supports flexible structural design of nickel ferrite spinel structures, allowing dopant incorporation to tailor magnetic anisotropy and saturation magnetization. These structural features directly affect electromagnetic performance. Magnetic loss is mainly governed by natural resonance and, to a lesser extent, eddy current effects, while dielectric loss arises from dipole polarization, interfacial polarization, and conduction loss. The synergistic balance of magnetic and dielectric losses makes nickel ferrite–polymer nanocomposites promising broadband radar absorbing materials. The discussion emphasizes the role of cation substitution, polymer matrices, and hybridization with carbon-based materials in enhancing microwave absorption bandwidth and impedance matching. Various synthesis approaches, including sol–gel, hydrothermal, and in-situ polymerization, are compared with respect to their influence on particle size, morphology, and absorption efficiency. Challenges such as limited bandwidth, thermal and mechanical stability, and scalability are highlighted, along with potential solutions through advanced nanostructuring, multifunctional design, and sustainable synthesis. Future research directions are also outlined to support the development of next-generation stealth and electromagnetic interference shielding technologies.
Effectiveness Comparison of Activated Carbon/MnO₂ Composite and Mg(OH)₂-Impregnated Activated Carbon as Adsorbents for Uranium Removal from Nuclear Waste : A Review Artanti Sekarini; Dita Cinta Toharani; Robith Alzamzami; Zidni Aghna Haqina; Hotma Renta
Sorption Studies Vol. 2 No. 1 (2026): Sorption Studies, Vol. 2 No. 1, June 2026
Publisher : Indonesian Scholar Society

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.55749/ss.v2i1.157

Abstract

Uranium contamination in nuclear wastewater poses significant environmental and health risks due to its radiotoxicity and persistence, necessitating the development of efficient adsorbent materials for its removal. This article discusses the effectiveness of two types of adsorbents: Activated Carbon/MnO2 Composite and Mg(OH)2-Impregnated Activated Carbon, in removing uranium from nuclear waste. Activated carbon/MnO2 composites exhibit high surface area and oxidative properties, enhancing uranium adsorption. In this study, Adsorption isotherm and kinetic analyses revealed that the composite achieved a maximum adsorption capacity of 65.5%, following the Langmuir model and pseudo-second-order kinetics. Meanwhile, Mg(OH)2-Impregnated Activated Carbon enhances the electrostatic interaction between adsorbents and uranium ions, thanks to its alkaline properties that favor the formation of chemical bonds. The maximum adsorption capacity of the predicted Mg(OH)2 reached 85 mg/g, with behavior that was also in accordance with the Langmuir isothermal model. Although both adsorbents show significant potential, the comparison shows that the choice between the two depends on the specific application conditions. The results of this research are expected to contribute to the development of more effective and sustainable nuclear waste management methods, as well as encourage innovation in water purification technology to overcome uranium contamination.