EIS Investigation of Redox Reactions (Quinone/Hydroquinone Couple) - Relevant to Organic Redox Flow Batteries

2021 ◽  
Vol MA2021-02 (47) ◽  
pp. 1402-1402
Author(s):  
Miji E Joy ◽  
Manoj Neergat
2020 ◽  
Vol 8 (22) ◽  
pp. 11218-11223
Author(s):  
Veerababu Medabalmi ◽  
Mahesh Sundararajan ◽  
Vikram Singh ◽  
Mu-Hyun Baik ◽  
Hye Ryung Byon

The potassium salt of N,N′-bis(glycinyl)naphthalene diimide [K2-BNDI] showed stable two-electron redox reactions accompanied by ion-pairing in aqueous redox-flow batteries.


2019 ◽  
Vol 10 ◽  
pp. 985-992 ◽  
Author(s):  
Jun Maruyama ◽  
Shohei Maruyama ◽  
Tomoko Fukuhara ◽  
Toru Nagaoka ◽  
Kei Hanafusa

Facile and efficient methods to prepare active electrodes for redox reactions of electrolyte ions are required to produce efficient and low-cost redox flow batteries (RFBs). Carbon-fiber electrodes are widely used in various types of RFBs and surface oxidation is commonly performed to enhance the redox reactions, although it is not necessarily efficient. Quite recently, a technique for nanoscale and uniform surface etching of the carbon fiber surface was developed and a significant enhancement of the negative electrode reaction of vanadium redox flow batteries was attained, although the enhancement was limited to the positive electrode reaction. In this study, we attempted to obtain an additional enhancement effect of metal-oxide nanoparticles without the need for further processing steps. A coating with carbonaceous thin films was obtained coating by sublimation, deposition, and pyrolysis of tin(II) phthalocyanine (SnPc) on a carbon fiber surface in a single heat-treatment step. The subsequent thermal oxidation concurrently achieved nanoscale surface etching and loading with SnO2 nanoparticles. The nanoscale-etched and SnO2-loaded surface was characterized by field-emission scanning electron microscopy (FESEM), Raman spectroscopy, and X-ray photoelectron spectroscopy (XPS). The activity for the vanadium ion redox reactions was evaluated by cyclic voltammetry (CV) to demonstrate the enhancement of both the positive and negative electrode reactions. A full cell test of the vanadium redox flow battery (VRFB) showed a significant decrease of the overpotential and a stable cycling performance. A facile and efficient technique based on the nanoscale processing of the carbon fiber surface was presented to substantially enhance the activity for the redox reactions in redox flow batteries.


Research ◽  
2019 ◽  
Vol 2019 ◽  
pp. 1-12 ◽  
Author(s):  
Zhaolin Na ◽  
Ruifang Yao ◽  
Qing Yan ◽  
Xudong Sun ◽  
Gang Huang

Carbon nanotubes (CNTs) possess remarkable mechanical, electrical, thermal, and optical properties that predestine them for numerous potential applications. The conventional chemical vapor deposition (CVD) route for the production of CNTs, however, suffers from costly and complex issues. Herein, we demonstrate a general and high-yield strategy to grow nitrogen-doped CNTs (NCNTs) on three-dimensional (3D) graphite felt (GF) substrates, through a direct thermal pyrolysis process simply using a common tube furnace, instead of the costly and complex CVD method. Specifically, the NCNTs-decorated GF (NCNT-GF) electrode possesses enhanced electrocatalytic performance towards cerium redox reactions, mainly due to the catalytic effect of N atoms doped into NCNTs, and ingenious and hierarchical 3D architecture of the NCNT-GF. As a result, the cell with the NCNT-GF serving as a positive electrode shows the improved energy efficiency with increases of about 53.4% and 43.8% over the pristine GF and the acidly treated GF at a high charge/discharge rate of 30 mA cm-2, respectively. Moreover, the as-prepared NCNT catalyst-enhanced electrode is found to be highly robust and should enable a long-term cycle without detectable efficiency loss after 500 cycles. The viable synthetic strategy reported in this study will contribute to the further development of more active heteroatom-doped CNTs for redox flow batteries.


Author(s):  
Yihan Zhen ◽  
Cuijuan Zhang ◽  
Jiashu Yuan ◽  
Yongdan Li

Anthraquinone (AQ)-based materials are promising active materials for aqueous redox flow batteries (ARFBs) owing to their fast kinetics and reversible two-electron redox reactions, but their application in non-aqueous RFBs (NARFBs)...


2018 ◽  
Vol 165 (11) ◽  
pp. A2510-A2518 ◽  
Author(s):  
Stefan Rümmler ◽  
Matthias Steimecke ◽  
Sabine Schimpf ◽  
Mark Hartmann ◽  
Stefan Förster ◽  
...  

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