Keyword search (4,164 papers available)

"Rochefort D" Authored Publications:

Title Authors PubMed ID
1 4,4 -Hydrazobis(1-methylpyridinium) as a Two-Electron Posolyte Molecule for Aqueous Organic Redox Flow Batteries Lebel H; Rochefort D; Lai C; Boulanger T; Debiais A; Hamlet L; Maleki M; Goulet MA; 40357731
ENCS

 

Title:4,4 -Hydrazobis(1-methylpyridinium) as a Two-Electron Posolyte Molecule for Aqueous Organic Redox Flow Batteries
Authors:Lebel HRochefort DLai CBoulanger TDebiais AHamlet LMaleki MGoulet MA
Link:https://pubmed.ncbi.nlm.nih.gov/40357731/
DOI:10.1021/jacs.5c03524
Publication:Journal of the American Chemical Society
Keywords:
PMID:40357731 Category: Date Added:2025-05-13
Dept Affiliation: ENCS
1 Département de Chimie, Center for Green Chemistry and Catalysis, Quebec Center for Advanced Materials, Institut Courtois, Université de Montréal, C.P. 6128, Succursale Centreville, Montréal, Québec, Canada, H3C 3J7.
2 Department of Chemical and Materials Engineering, Concordia University, Montreal, Quebec, Canada, H3G 1M8.

Description:

Aqueous organic redox flow batteries (AORFBs) are a safe and sustainable solution for the storage of intermittent renewable energy. While several highly soluble two-electron organic molecule negolytes have been developed for AORFBs, most reported organic posolyte species exchange only one electron. Herein, readily available 4,4'-hydrazobis(1-methylpyridinium) dichloride (HydBPyMeCl) is described as a novel two-electron posolyte molecule for AORFBs. The synthesis of HydBPyMeCl was accomplished by a three-step process, yielding multiple grams of the compound. HydBPyMeCl exhibited a reversible two-electron transfer at high redox potential (+0.64 V vs Ag/AgCl reference electrode, pH = 0). When evaluated at 1 M concentration and low pH (2 M HCl) with V3+/V2+ on the negative side, HydBPyMeCl showed high stability. A capacity retention of 99.997% per cycle (99.980% per day measured over 70 days) was achieved, coupled with a high volumetric specific capacity of 47.1 Ah/L (87.2% of capacity utilization at 80 mA/cm2).





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