Designing a high-performance electrode leveraging dual-material synergy in a nanoarchitectural framework: Progressing towards supercapacitors with enhanced energy density

dc.contributor.authorSivakumar, Periyasamy
dc.contributor.authorRaj, C. Justin
dc.contributor.authorSubramanian, Palaniappan
dc.contributor.authorSavariraj, Antonysamy Dennyson
dc.contributor.authorManikandan, Ramu
dc.contributor.authorJung, Hyun
dc.date.accessioned2026-04-28T18:05:58Z
dc.date.available2026-04-28T18:05:58Z
dc.date.issued2025
dc.date.updated2026-04-28T18:05:58Z
dc.description.abstractExploring highly electroactive electrode materials with compatible nanostructures, tunable properties, and strong conductive networks is vital for supercapacitors (SCs). However, comprehending this complex area remains a significant challenge. In this work, we report the synthesis of a hierarchical NiCo2O4@NiMoO4 (NCO@NMO) hybrid nanoarchitecture utilizing a cost-effective hydrothermal approach and subsequentannealing. This is achieved through facile and scalable in situ fabrication techniques that yield an electrode material suitable for advanced high-energy hybrid supercapacitors (HSCs). The unique hybrid nanoarchitecture is engineered to provide an effective, open-porous framework that facilitates ion diffusion and enables rapid electron transport. The NCO@NMO hybrid nanoarchitecture electrode exhibits a battery-type redox mechanism, achieving a peak specific capacitance of 1984 F g􀀀 1 at a current density of 1 A g􀀀 1 in an aqueous electrolyte, surpassing the performance of its individual components. Enhanced electrochemical performance is achieved by increasing the density of electroactive sites and conductivity through surface modifications, thereby facilitating rapid redox kinetics. Notably, the fabricated HSC device, with a configuration of NCO@NMO//activated carbon, demonstrates an impressive power density of 42.56 kW kg􀀀 1, complemented by an energy density of 75.04 Wh kg􀀀 1, and exhibits excellent cyclic stability, retaining up to 89.62 ± 1.19 % of its capacitance, even after 20,000 cycles. The high energy density and considerable cyclic stability are comparatively higher than those of conventional SCs and even approach the values of commercial batteries.en
dc.format16
dc.identifier.document-number001540292600001
dc.identifier.doi10.1016/j.jallcom.2025.182267
dc.identifier.issn0925-8388
dc.identifier.obd43947034
dc.identifier.orcidSubramanian, Palaniappan 0000-0003-1000-6994
dc.identifier.urihttp://hdl.handle.net/11025/67870
dc.language.isoen
dc.project.IDEH22_008/0004572
dc.relation.ispartofseriesJOURNAL OF ALLOYS AND COMPOUNDS
dc.rights.accessC
dc.subjecttransition metal oxideen
dc.subjecthybrid nanoarchitectureen
dc.subjectinterface engineeringen
dc.subjectsynergetic effecten
dc.subjectaqueous hybrid supercapacitoren
dc.subjectenergy storage systemen
dc.titleDesigning a high-performance electrode leveraging dual-material synergy in a nanoarchitectural framework: Progressing towards supercapacitors with enhanced energy densityen
dc.typeČlánek v databázi WoS (Jimp)
dc.typeČLÁNEK
dc.type.statusPublished Version
local.files.count1*
local.files.size11270298*
local.has.filesyes*
local.identifier.eid2-s2.0-105010567019

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