Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives

The investigation into intercalation mechanisms in vanadium pentoxide has garnered significant attention within the realm of research, primarily propelled by its remarkable theoretical capacity for energy storage. This comprehensive review delves into the latest advancements that have enriched our u...

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Main Authors: Ricardo Alcántara, Pedro Lavela, Kristina Edström, Maximilian Fichtner, Top Khac Le, Christina Floraki, Dimitris Aivaliotis, Dimitra Vernardou
Format: Article
Language:English
Published: MDPI AG 2023-12-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/13/24/3149
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author Ricardo Alcántara
Pedro Lavela
Kristina Edström
Maximilian Fichtner
Top Khac Le
Christina Floraki
Dimitris Aivaliotis
Dimitra Vernardou
author_facet Ricardo Alcántara
Pedro Lavela
Kristina Edström
Maximilian Fichtner
Top Khac Le
Christina Floraki
Dimitris Aivaliotis
Dimitra Vernardou
author_sort Ricardo Alcántara
collection DOAJ
description The investigation into intercalation mechanisms in vanadium pentoxide has garnered significant attention within the realm of research, primarily propelled by its remarkable theoretical capacity for energy storage. This comprehensive review delves into the latest advancements that have enriched our understanding of these intricate mechanisms. Notwithstanding its exceptional storage capacity, the compound grapples with challenges arising from inherent structural instability. Researchers are actively exploring avenues for improving electrodes, with a focus on innovative structures and the meticulous fine-tuning of particle properties. Within the scope of this review, we engage in a detailed discussion on the mechanistic intricacies involved in ion intercalation within the framework of vanadium pentoxide. Additionally, we explore recent breakthroughs in understanding its intercalation properties, aiming to refine the material’s structure and morphology. These refinements are anticipated to pave the way for significantly enhanced performance in various energy storage applications.
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spelling doaj.art-ffb4308a2dd24ab9a6bef743483cefd42023-12-22T14:29:17ZengMDPI AGNanomaterials2079-49912023-12-011324314910.3390/nano13243149Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New PerspectivesRicardo Alcántara0Pedro Lavela1Kristina Edström2Maximilian Fichtner3Top Khac Le4Christina Floraki5Dimitris Aivaliotis6Dimitra Vernardou7Departamento de Química Inorgánica e Ingeniería Química, Instituto Químico para la Energía y el Medioambiente (IQEMA), Universidad de Córdoba, Campus de Rabanales, Edificio Marie Curie, E-14071 Córdoba, SpainDepartamento de Química Inorgánica e Ingeniería Química, Instituto Químico para la Energía y el Medioambiente (IQEMA), Universidad de Córdoba, Campus de Rabanales, Edificio Marie Curie, E-14071 Córdoba, SpainDepartment of Chemistry—Ångström Laboratory, Uppsala University, SE-751 21 Uppsala, SwedenInstitute of Nanotechnology, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, GermanyFaculty of Materials Science and Technology, University of Science, Ho Chi Minh City 700000, VietnamDepartment of Electrical and Computer Engineering, School of Engineering, Hellenic Mediterranean University, 71410 Heraklion, GreeceDepartment of Electrical and Computer Engineering, School of Engineering, Hellenic Mediterranean University, 71410 Heraklion, GreeceDepartment of Electrical and Computer Engineering, School of Engineering, Hellenic Mediterranean University, 71410 Heraklion, GreeceThe investigation into intercalation mechanisms in vanadium pentoxide has garnered significant attention within the realm of research, primarily propelled by its remarkable theoretical capacity for energy storage. This comprehensive review delves into the latest advancements that have enriched our understanding of these intricate mechanisms. Notwithstanding its exceptional storage capacity, the compound grapples with challenges arising from inherent structural instability. Researchers are actively exploring avenues for improving electrodes, with a focus on innovative structures and the meticulous fine-tuning of particle properties. Within the scope of this review, we engage in a detailed discussion on the mechanistic intricacies involved in ion intercalation within the framework of vanadium pentoxide. Additionally, we explore recent breakthroughs in understanding its intercalation properties, aiming to refine the material’s structure and morphology. These refinements are anticipated to pave the way for significantly enhanced performance in various energy storage applications.https://www.mdpi.com/2079-4991/13/24/3149vanadium pentoxideunivalent ionsmultivalent ionsdual-ion intercalationcationic dopingelectrolytes
spellingShingle Ricardo Alcántara
Pedro Lavela
Kristina Edström
Maximilian Fichtner
Top Khac Le
Christina Floraki
Dimitris Aivaliotis
Dimitra Vernardou
Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
Nanomaterials
vanadium pentoxide
univalent ions
multivalent ions
dual-ion intercalation
cationic doping
electrolytes
title Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
title_full Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
title_fullStr Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
title_full_unstemmed Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
title_short Metal-Ion Intercalation Mechanisms in Vanadium Pentoxide and Its New Perspectives
title_sort metal ion intercalation mechanisms in vanadium pentoxide and its new perspectives
topic vanadium pentoxide
univalent ions
multivalent ions
dual-ion intercalation
cationic doping
electrolytes
url https://www.mdpi.com/2079-4991/13/24/3149
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