A Molecular Capsule to Confine Redox‐Active Metal Acetylacetonate Complex for Long‐Lifetime Non‐Aqueous Redox Flow Battery

Redox flow batteries are promising candidates for grid-scale energy storage due to their intrinsic safety and low cost, but their practical applications are often limited by instability of redox-active species and crossover between the two electrolytes. Here, we design a molecular capsule formed by dimeric 4-tert-butylcalix[8]arene (TBC8). Due to their similar hydrophobic properties, the redox-active molecules (metal acetylacetonates) tend to be enriched in the cavities with tert-butyl groups of the formed capsules, which enables a several-fold enhanced solubility of redox-active species, compared with the system without TBC8. By using the electrolytes containing encapsulated redox species, the constructed non-aqueous redox flow battery shows a capacity retention of 90.41% after 1000 cycles, much better than that of the device (52.2% after 400 cycles) without using TBC8 capsules. This work demonstrates a promising strategy to design novel electrolytes containing sensitive redox-active species toward high-performance flow batteries with long-term stability.

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Journal
Small
Published
2026-10-06
DOI
https://doi.org/10.1002/smll.76120
Primary Topic
Advanced battery technologies research
Type
article
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article

A Molecular Capsule to Confine Redox‐Active Metal Acetylacetonate Complex for Long‐Lifetime Non‐Aqueous Redox Flow Battery

Weiyang Tang, Keyi Dong, Quanhu Sun, Jiaxin Yang et al.
Small
Advanced battery technologies research
article

A Molecular Capsule to Confine Redox‐Active Metal Acetylacetonate Complex for Long‐Lifetime Non‐Aqueous Redox Flow Battery

Weiyang Tang, Keyi Dong, Quanhu Sun, Jiaxin Yang, Tao Chen, Tian Lv, Zefeng Yan, Yan Tan, Yu Wang
article en

Abstract

Redox flow batteries are promising candidates for grid-scale energy storage due to their intrinsic safety and low cost, but their practical applications are often limited by instability of redox-active species and crossover between the two electrolytes. Here, we design a molecular capsule formed by dimeric 4-tert-butylcalix[8]arene (TBC8). Due to their similar hydrophobic properties, the redox-active molecules (metal acetylacetonates) tend to be enriched in the cavities with tert-butyl groups of the formed capsules, which enables a several-fold enhanced solubility of redox-active species, compared with the system without TBC8. By using the electrolytes containing encapsulated redox species, the constructed non-aqueous redox flow battery shows a capacity retention of 90.41% after 1000 cycles, much better than that of the device (52.2% after 400 cycles) without using TBC8 capsules. This work demonstrates a promising strategy to design novel electrolytes containing sensitive redox-active species toward high-performance flow batteries with long-term stability.

Small
Tongji University (CN)
Openalex Percentile: Top 22%
Advanced battery technologies research
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A Molecular Capsule to Confine Redox‐Active Metal Acetylacetonate Complex for Long‐Lifetime Non‐Aqueous Redox Flow Battery — Weiyang Tang, Keyi Dong, et al. · Small (2026) | TGRS Research Map | TGRS