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Solvent-guided nanoarchitecturing of heterodiatomic carbon superstructures for high-performance zinc-ion hybrid capacitors.

Authors :
Huang, Qi
Huang, Lu
Jin, Yaowei
Sun, Yaojie
Song, Ziyang
Xie, Fengxian
Source :
Chemical Engineering Journal. Feb2024, Vol. 482, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The interaction between pyromellitic and 1,5-diaminonaphthalene forms nanoparticle modules that self-assemble into nanotentacle-constructed superstructures via solute–solvent interaction. A charge storage mechanism of alternate uptake of Zn2+/CF 3 SO 3 − at zincophilic-sites and multielectron redox response to form O−Zn−N bonds is proposed. The ion-compatible pore architectures render fast desolvation and low diffusion energy barrier. This unique electrochemistry harvests high-energy (145 Wh kg−1), large-current survivability (100 A/g) and ultralong-life (300,000 cycles) for Zn-ion storage. [Display omitted] • Modulating the solvent − precursor interaction gives tailor-made spherical carbon superstructures. • Carbon superstructure cathodes enable high-capacity, high-energy and ultralong-life Zn-ion capacitors. • An opposite charge-carrier co-storage mechanism within carbon superstructures is proposed. Designing well-structured carbon nanomaterials is crucial for promoting zinc-ion hybrid capacitors with high-kinetics and large-current Zn2+-storage viability. Herein we report the solvent-guided nanoarchitecturing of polyimide precursor to customize versatile heterodiatomic carbon superstructures (CS). Modulating the solvent-precursor interaction through a solubility parameter model and molecular dynamic simulation optimizes the thermodynamic solubilization (–2.14 eV) and growth kinetics (–9.22 eV) of polymeric intermediates with a minimum energy obstruction. The solvent-optimized CS exhibit well-defined spherical topology, ion-compatible pore channels and favorable dual-function motifs, affording more ample-exposed zincophilic platforms and high-speed ion transport routes. As a consequence, the assembled Zn||CS hybrid capacitor activates superior electrochemical activity and durability, including superior rate capacities (240 mAh g−1 at 0.5 A g−1, 108 mAh g−1 at 100 A g−1), high energy density (145 Wh kg−1) and ultralong lifespan (300,000 cycles at 50 A g−1). Marriage of experimental studies and theoretical calculations unravel the alternate storage of opposite charges in CS cathode, which involves high-kinetics physical Zn2+/CF 3 SO 3 − uptake at zincophilic sites and chemical redox of Zn2+ ions with carbonyl/pyridine motifs to initiate O−Zn−N bonds. Molecular dynamics simulations demonstrate that diffusion kinetics of Zn2+ ions is greatly facilitated by > 10 Å micropores with low energy barriers, but is blocked by < 7 Å micropores. This work provides new insights into the structural engineering of carbon superstructures for advanced energy storage. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
482
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
175458574
Full Text :
https://doi.org/10.1016/j.cej.2024.148912