Interface-engineered NiO-TiN nanocomposites synthesized by sol-gel-assisted controlled precipitation: Microstrain-interface coupling and broadband dielectric/AC transport response

dc.contributor.authorGurgenc, Ezgi
dc.contributor.authorMacit, Cevher Kursat
dc.contributor.authorGuner, Melek
dc.contributor.authorAyik, Merve
dc.contributor.authorGurgenc, Turan
dc.contributor.authorAksakal, Bunyamin
dc.date.accessioned2026-08-12T17:43:07Z
dc.date.issued2026
dc.departmentFırat Üniversitesi
dc.description.abstractNiO-based dielectric ceramics and nanostructured oxides often exhibit strongly frequency-dependent electrical behavior due to defect-and interface-mediated polarization rather than purely intrinsic lattice response. In this work, pristine NiO and a compositionally systematic series of TiN-containing NiO-TiN nanopowders (1-10 mol. %) were synthesized via a sol-gel-assisted controlled precipitation route while keeping key processing parameters constant to enable reliable structure-property correlations. Phase formation, crystallinity, crystallite-size refinement, and microstrain evolution were examined by XRD using Scherrer and Williamson-Hall analyses, and the microstructural morphology and Ti/N distribution were assessed by FE-SEM/EDX. FT-IR, Raman, and XPS were employed to probe bonding heterogeneity, defect-activated vibrational features, and the surface/nearsurface chemical states relevant to oxide-nitride heterointerfaces. Broadband dielectric spectroscopy was used to evaluate epsilon ', tan delta, and sigma ac over a wide frequency range. TiN incorporation produced a pronounced and non-linear enhancement of epsilon ' despite the lower intrinsic permittivity of pristine TiN. At 1 kHz, epsilon ' increased from 7.155 +/- 0.005 for pristine NiO to 14.854 +/- 0.013 for NiO-TN10, while tan delta remained within a narrow and practically manageable interval of 0.070-0.087, indicating that permittivity gain was not accompanied by disproportionate loss. In parallel, sigma ac exhibited dispersive behavior and increased systematically with TiN content, confirming a tunable transport response in the composites. Overall, the results demonstrate that introducing TiN as a conductive secondary phase is an effective interface-engineering strategy to co-tune permittivity, dissipation, and AC transport in NiO, supporting the practical relevance of NiO-TiN nanocomposites for dielectric components and energy-related functional materials, including capacitive energy storage elements and electromagnetic or microelectronic layers requiring enhanced epsilon ' with controlled loss.
dc.description.sponsorshipFirat University Research Fund [TEKF.25.57, ADEP.24.18]
dc.description.sponsorshipThe Firat University Research Fund (TEKF.25.57 and ADEP.24.18)
dc.identifier.doi10.1016/j.jssc.2026.125922
dc.identifier.issn0022-4596
dc.identifier.issn1095-726X
dc.identifier.scopus2-s2.0-105031777160
dc.identifier.scopusqualityQ1
dc.identifier.urihttps://doi.org/10.1016/j.jssc.2026.125922
dc.identifier.urihttps://hdl.handle.net/11508/60006
dc.identifier.volume359
dc.identifier.wosWOS:001711211600001
dc.identifier.wosqualityQ1
dc.indekslendigikaynakWeb of Science
dc.indekslendigikaynakScopus
dc.language.isoen
dc.publisherAcademic Press Inc Elsevier Science
dc.relation.ispartofJournal of Solid State Chemistry
dc.relation.publicationcategoryMakale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı
dc.rightsinfo:eu-repo/semantics/closedAccess
dc.snmzKA_WoS_20260511
dc.subjectNanocomposite
dc.subjectNiO
dc.subjectDielectric
dc.subjectInterfacial polarization
dc.subjectAC conductivity
dc.subjectEnergy storage materials
dc.subjectMaxwell-Wagner-Sillars polarization
dc.titleInterface-engineered NiO-TiN nanocomposites synthesized by sol-gel-assisted controlled precipitation: Microstrain-interface coupling and broadband dielectric/AC transport response
dc.typeArticle

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