Your browser doesn't support javascript.
loading
In situ NMR metrology reveals reaction mechanisms in redox flow batteries.
Zhao, Evan Wenbo; Liu, Tao; Jónsson, Erlendur; Lee, Jeongjae; Temprano, Israel; Jethwa, Rajesh B; Wang, Anqi; Smith, Holly; Carretero-González, Javier; Song, Qilei; Grey, Clare P.
Afiliación
  • Zhao EW; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Liu T; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Jónsson E; Shanghai Key Laboratory of Chemical Assessment and Sustainability, Department of Chemistry, Tongji University, Shanghai, China.
  • Lee J; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Temprano I; Department of Physics, Chalmers University of Technology, Gothenburg, Sweden.
  • Jethwa RB; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Wang A; School of Earth and Environmental Sciences, Seoul National University, Seoul, South Korea.
  • Smith H; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Carretero-González J; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Song Q; Barrer Centre, Department of Chemical Engineering, Imperial College London, London, UK.
  • Grey CP; Department of Chemistry, University of Cambridge, Cambridge, UK.
Nature ; 579(7798): 224-228, 2020 03.
Article en En | MEDLINE | ID: mdl-32123353
ABSTRACT
Large-scale energy storage is becoming increasingly critical to balancing renewable energy production and consumption1. Organic redox flow batteries, made from inexpensive and sustainable redox-active materials, are promising storage technologies that are cheaper and less environmentally hazardous than vanadium-based batteries, but they have shorter lifetimes and lower energy density2,3. Thus, fundamental insight at the molecular level is required to improve performance4,5. Here we report two in situ nuclear magnetic resonance (NMR) methods of studying redox flow batteries, which are applied to two redox-active electrolytes 2,6-dihydroxyanthraquinone (DHAQ) and 4,4'-((9,10-anthraquinone-2,6-diyl)dioxy) dibutyrate (DBEAQ). In the first method, we monitor the changes in the 1H NMR shift of the liquid electrolyte as it flows out of the electrochemical cell. In the second method, we observe the changes that occur simultaneously in the positive and negative electrodes in the full electrochemical cell. Using the bulk magnetization changes (observed via the 1H NMR shift of the water resonance) and the line broadening of the 1H shifts of the quinone resonances as a function of the state of charge, we measure the potential differences of the two single-electron couples, identify and quantify the rate of electron transfer between the reduced and oxidized species, and determine the extent of electron delocalization of the unpaired spins over the radical anions. These NMR techniques enable electrolyte decomposition and battery self-discharge to be explored in real time, and show that DHAQ is decomposed electrochemically via a reaction that can be minimized by limiting the voltage used on charging. We foresee applications of these NMR methods in understanding a wide range of redox processes in flow and other electrochemical systems.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Suministros de Energía Eléctrica / Espectroscopía de Resonancia Magnética Idioma: En Revista: Nature Año: 2020 Tipo del documento: Article País de afiliación: Reino Unido

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Suministros de Energía Eléctrica / Espectroscopía de Resonancia Magnética Idioma: En Revista: Nature Año: 2020 Tipo del documento: Article País de afiliación: Reino Unido