Selective Metathesis Synthesis of MgCr2S4 by Control of Thermodynamic Driving Forces
Preprint 2019 en
Authors
AM
Akira Miura
HI
Hiroaki Ito
CB
Christopher J. Bartel
Abstract
1 min read
MgCr 2 S 4 thiospinel is predicted to be a compelling Mg-cathode material, but its preparation via traditional solid-state synthesis methods has proven challenging. Wustrow et al. [Inorg. Chem. 57, 14 (2018)] found that the formation of MgCr 2 S 4 from MgS + Cr 2 S 3 binaries requires weeks of annealing at 800 ℃ with numerous intermediate regrinds. The slow reaction kinetics of MgS + Cr 2 S 3 --> MgCr 2 S 4 can be attributed to a miniscule thermodynamic driving force of ΔH = –2 kJ/mol. Here, we demonstrate that the double ion-exchange metathesis reaction, MgCl 2 + 2 NaCrS 2 --> MgCr 2 S 4 + 2 NaCl, has a reaction enthalpy of ΔH = –47 kJ/mol, which is thermodynamically driven by the large exothermicity of NaCl formation. Using this metathesis reaction, we successfully synthesized MgCr 2 S 4 nanoparticles (< 200 nm) from MgCl 2 and NaCrS 2 precursors in a KCl flux at 500 °C in only 30 minutes. NaCl and other metathesis byproducts are then easily washed away by water. We rationalize the selectivity of MgCr 2 S 4 in the metathesis reaction from the topology of the DFT-calculated pseudo-ternary MgCl 2 -CrCl 3 -Na 2 S phase diagram. Our work helps to establish metathesis reactions as a powerful alternative synthesis route to inorganic materials that have otherwise small reaction energies from conventional precursors.
Gia Thinh Tran, Allison Wustrow, Daniel O’Nolan, Songsheng Tao, Christopher J. Bartel, Tanjin He, Matthew J. McDermott, Brennan C. McBride, Karena W. Chapman, Simon J. L. Billinge, Kristin A. Persson, Gerbrand Ceder, James R. Neilson
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