MoO3−x Incorporated Covalent Organic Framework Nanocomposite as an Advanced Anode Material for Li-Ion Batteries: Elucidating Structure−Activity Relationships

dc.contributor.authorPatil, Manoj Krishnaten_US
dc.contributor.authorKADAM, SUPRIYAen_US
dc.contributor.authorNair, Aathiraen_US
dc.contributor.authorU, Praveenen_US
dc.contributor.authorJoshi, Kavitaen_US
dc.contributor.authorMukherjee, Shatabdi Porelen_US
dc.contributor.departmentDept. of Physicsen_US
dc.date.accessioned2026-09-01T05:57:31Z
dc.date.issued2026-08en_US
dc.description.abstractMoO3 serves as a promising anode material for lithium-ion batteries (LIBs) because of its high theoretical capacity of 1117 mAh g−1 and its layered structure. However, MoO3 has inherently low electronic conductivity and experiences significant volume expansion during the charge−discharge cycles, which limits its ability to achieve substantial capacity and cyclability for practical applications. Generally, oxygen vacancies in MoO3 are considered effective in enhancing conductivity and expanding the lattice distance. On the other hand, covalent organic frameworks (COFs) have recently been used as organic anode materials for LIBs because of their abundance of active sites, large conjugated structures, high surface area, and accessible Li+ transport channels. Despite the several advantages of COF-based nanomaterials, critical issues like poor structural stability and a limited number of redox-active sites impede the extensive use of these nanomaterials in LIBs. In this study, we present a novel nanomaterial design strategy that incorporates oxygen-deficient MoO3−x in the TA COF architecture, fabricated using a simple mechanochemical synthesis procedure. To the best of our knowledge, MoO3−x-TA COF nanocomposites (NCs) as anode materials have been evaluated for LIBs for the first time. The assembled LIBs demonstrate exceptional performance, achieving a specific capacity of 517 mAh g−1 at a current of 0.1 A g−1 and showing cyclic stability of 1100 cycles with roughly 100% retention. A density functional theory (DFT) investigation was conducted, and the results indicate that molybdenum trioxide preferentially binds near the keto site while preserving the overall structure of TA-COF. Furthermore, this modification enhances Li adsorption, as the keto-modified TA-COF remains structurally less distorted and energetically more stable at higher Li loadings compared to the pristine TA-COF. Thus, this strategy of introducing transition metal oxides paves the way for regulating the valence, lattice structure, and even the composition of electrode materials through COF-based nanocomposite preparation. This approach equips these materials with desirable features and offers an alternative solution to meet the demands of energy storage systems.en_US
dc.identifier.citationACS Applied Materials & Interfacesen_US
dc.identifier.issn1944-8252en_US
dc.identifier.issn1944-8244en_US
dc.identifier.sourcetitleACS Applied Materials & Interfacesen_US
dc.identifier.urihttps://doi.org/10.1021/acsami.6c12562
dc.identifier.urihttp://192.168.3.70:4000/handle/123456789/11390
dc.language.isoenen_US
dc.publication.originofpublisherForeignen_US
dc.publisherAmerican Chemical Societyen_US
dc.subjectMoO3−xen_US
dc.subjectCOFen_US
dc.subjectNanocomposites (NCs)en_US
dc.subjectLi-ion batteryen_US
dc.subjectAnodeen_US
dc.subjectStructure−activity relationshipsen_US
dc.subjectDFT calculationen_US
dc.subject2026-AUG-WEEK3en_US
dc.subjectTOC-AUG-2026en_US
dc.subject2026en_US
dc.titleMoO3−x Incorporated Covalent Organic Framework Nanocomposite as an Advanced Anode Material for Li-Ion Batteries: Elucidating Structure−Activity Relationshipsen_US
dc.typeArticleen_US

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