Abstract
Two-electron neutral aqueous organic redox flow batteries (AORFBs) hold more promising applications in the power grid than one-electron batteries because of their higher capacity. However, their development is strongly limited by the structural instability of the highly reduced species. By combining the extended π-conjugation structure of the anolytes and the enhanced aromaticity of the highly reduced species, we reported a series of highly conjugated and inexpensive arylene diimide derivatives (NDI, PDI, and TPDI) as novel two-electron storage anolyte materials for ultrastable AORFBs. Matched with (ferrocenylmethyl)trimethylammonium chloride (FcNCl) as catholyte, arylene diimide derivative-based AORFBs showed the highest stability in two-electron AORFBs to date. The NDI/FcNCl-based AORFB delivered 98.44% capacity retention at 40 mA cm−2 for 350 cycles; TPDI/FcNCl-based AORFB also showed remarkable stability with 97.22% capacity retention at 20 mA cm−2 over 200 cycles. This finding lays the theoretical foundation and offers a reference for improving the stability of two-electron AORFBs.
Original language | English |
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Pages (from-to) | 2334-2347 |
Number of pages | 14 |
Journal | CCS Chemistry |
Volume | 5 |
Issue number | 10 |
DOIs | |
Publication status | Published - Oct 2023 |
Externally published | Yes |
Keywords
- anolyte materials
- arylene diimide derivatives
- energy storage
- organic flow battery
- two-electron storage