Back to Search Start Over

The mechanism of Mg2+ conduction in ammine magnesium borohydride promoted by a neutral molecule.

Authors :
Yigang Yan
Dononelli, Wilke
Jørgensen, Mathias
Grinderslev, Jakob B.
Young-Su Lee
Young Whan Cho
Černý, Radovan
Hammer, Bjørk
Jensen, Torben R.
Source :
Physical Chemistry Chemical Physics (PCCP); 5/7/2020, Vol. 22 Issue 17, p9204-9209, 6p
Publication Year :
2020

Abstract

Light weight and cheap electrolytes with fast multi-valent ion conductivity can pave the way for future high-energy density solid-state batteries, beyond the lithium-ion battery. Here we present the mechanism of Mg-ion conductivity of monoammine magnesium borohydride, Mg(BH<subscript>4</subscript>)<subscript>2</subscript>·NH<subscript>3</subscript>. Density functional theory calculations (DFT) reveal that the neutral molecule (NH<subscript>3</subscript>) in Mg(BH<subscript>4</subscript>)<subscript>2</subscript>·NH<subscript>3</subscript> is exchanged between the lattice and interstitial Mg<superscript>2+</superscript> facilitated by a highly flexible structure, mainly owing to a network of di-hydrogen bonds, N–H<superscript>δ+</superscript>⋯<superscript>−δ</superscript>H–B and the versatile coordination of the BH<subscript>4</subscript><superscript>−</superscript> ligand. DFT shows that di-hydrogen bonds in inorganic matter and hydrogen bonds in bio-materials have similar bond strengths and bond lengths. As a result of the high structural flexibiliy, the Mg-ion conductivity is dramatically improved at moderate temperature, e.g. σ(Mg<superscript>2+</superscript>) = 3.3 × 10<superscript>−4</superscript> S cm<superscript>−1</superscript> at T = 80 °C for Mg(BH<subscript>4</subscript>)<subscript>2</subscript>·NH<subscript>3</subscript>, which is approximately 8 orders of magnitude higher than that of Mg(BH<subscript>4</subscript>)<subscript>2</subscript>. Our results may inspire a new approach for the design and discovery of unprecedented multivalent ion conductors. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
22
Issue :
17
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
143104829
Full Text :
https://doi.org/10.1039/d0cp00158a