Low-Temperature Molten Salt Electrolytes for Membrane-Free Sodium Metal Batteries
Author(s) -
Brian L. Spatocco,
Takanari Ouchi,
Guillaume Lambotte,
Paul Burke,
Donald R. Sadoway
Publication year - 2015
Publication title -
journal of the electrochemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.258
H-Index - 271
eISSN - 1945-7111
pISSN - 0013-4651
DOI - 10.1149/2.0441514jes
Subject(s) - eutectic system , electrolyte , electrochemistry , melting point , molten salt , battery (electricity) , energy storage , phase diagram , chemistry , materials science , electrode , inorganic chemistry , phase (matter) , thermodynamics , alloy , metallurgy , power (physics) , physics , organic chemistry
The liquid metal battery (LMB) is attractive due to its simple construction, its circumvention of solid-state failure mechanisms and resultantly long lifetimes, and its particularly low levelized cost of energy. Here, we provide a study of a unique binary electrolyte, NaOH-NaI, in order to pursue a low-cost and low-temperature sodium-based liquid metal battery (LMB) for grid-scale electricity storage. Thermodynamic studies have confirmed a low eutectic melting temperature (220°C) as well as provided data to complete the phase diagram of this system. X-ray diffraction has further supported the existence of a recently discovered compound, Na[subscript 7](OH)[subscript 5]I[subscript 2], as well as offered initial evidence toward a NaI-rich compound displaying Pm-3m symmetry. These phase equilibrium data have then been used to optimize parameters from a two-sublattice thermodynamic solution model to provide a starting point for study of higher order systems. Further, a detailed electrochemical study has identified the voltage window and related oxidation/reduction reactions and found greatly improved stability of the pure sodium electrode against the electrolyte. Finally, an Na|NaOH-NaI|Pb-Bi proof-of-concept cell was assembled. This cell achieved over 100 cycles and displayed leakage currents below 0.40 mA/cm[superscript 2]. These results highlight an exciting class of low-melting molten salt electrolytes that may enable low cost grid-scale storage.United States. Advanced Research Projects Agency-Energy (Award DE-AR47)TOTAL (Firm)MIT Tata Center for Technology and Desig
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom