TY - JOUR
T1 - Unlocking Mg2+ Transport in Magnesium Batteries
T2 - Aromatic Architectures and Systemic Co-Design
AU - Zhang, Jiang
AU - Liu, Changyi
AU - Su, Yanan
AU - Jia, Richen
AU - Xiong, Yuanyuan
AU - Cheng, Qian
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Magnesium batteries have attracted interest as post-lithium energy-storage systems because Mg metal offers high volumetric capacity, dendrite-free deposition under many conditions, and favorable elemental abundance. However, their practical development remains limited by sluggish Mg2+ transport across length scales, including interfacial ion desolvation and solid-state diffusion. Against this backdrop, aromatic compounds have emerged as a platform for magnesium-battery design, not simply because they provide redox-active motifs, but because their low-electronegativity frameworks, delocalized π-electron systems, and molecular programmability can mitigate localized electrostatic trapping and regulate Mg2+ migration pathways. This review discusses how aromatic chemistry can address the key bottlenecks of magnesium batteries from three interconnected perspectives: cathode design, anode interphase engineering, and electrolyte compatibility. Particular emphasis is placed on perylene diimide (PDI)-based systems, which provide a rare model platform in which molecular structure, conjugation mode, steric distortion, ion-accessible geometry, and storage mechanism can all be deliberately tuned. We further discuss aromatic artificial interphases for Mg-metal protection, including fullerene-derived networks as mechanistically illustrative examples, and analyze how electrolyte chemistry governs storage species, interfacial compatibility, and active-material stability. Rather than treating cathodes, anodes, and electrolytes as isolated components, this review emphasizes mechanism-oriented co-design and critically assesses the limitations of aromatic materials for magnesium batteries.
AB - Magnesium batteries have attracted interest as post-lithium energy-storage systems because Mg metal offers high volumetric capacity, dendrite-free deposition under many conditions, and favorable elemental abundance. However, their practical development remains limited by sluggish Mg2+ transport across length scales, including interfacial ion desolvation and solid-state diffusion. Against this backdrop, aromatic compounds have emerged as a platform for magnesium-battery design, not simply because they provide redox-active motifs, but because their low-electronegativity frameworks, delocalized π-electron systems, and molecular programmability can mitigate localized electrostatic trapping and regulate Mg2+ migration pathways. This review discusses how aromatic chemistry can address the key bottlenecks of magnesium batteries from three interconnected perspectives: cathode design, anode interphase engineering, and electrolyte compatibility. Particular emphasis is placed on perylene diimide (PDI)-based systems, which provide a rare model platform in which molecular structure, conjugation mode, steric distortion, ion-accessible geometry, and storage mechanism can all be deliberately tuned. We further discuss aromatic artificial interphases for Mg-metal protection, including fullerene-derived networks as mechanistically illustrative examples, and analyze how electrolyte chemistry governs storage species, interfacial compatibility, and active-material stability. Rather than treating cathodes, anodes, and electrolytes as isolated components, this review emphasizes mechanism-oriented co-design and critically assesses the limitations of aromatic materials for magnesium batteries.
KW - anode
KW - cathode
KW - delocalized electron
KW - diimide
KW - electrolyte
KW - magnesium
KW - materials science
KW - molecule
KW - nanotechnology
KW - perylene
UR - https://www.scopus.com/pages/publications/105040691012
U2 - 10.1002/aenm.71163
DO - 10.1002/aenm.71163
M3 - Review article
AN - SCOPUS:105040691012
SN - 1614-6832
JO - Advanced Energy Materials
JF - Advanced Energy Materials
ER -