Article, 2023

Methylamine Magnesium Borohydrides as Electrolytes for All-Solid-State Magnesium Batteries

Chemistry of Materials, ISSN 1520-5002, 0897-4756, Volume 35, 3, Pages 1440-1448, 10.1021/acs.chemmater.2c03641

Contributors

Amdisen, Mads Blichfeldt 0000-0003-2663-8988 [1] Grinderslev, Jakob Bæk 0000-0001-7645-1383 [1] Skov, Lasse N 0000-0001-5427-2632 [1] Jensen, Torben René 0000-0002-4278-3221 (Corresponding author) [1]

Affiliations

  1. [1] Aarhus University
  2. [NORA names: AU Aarhus University; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Solid-state magnesium electrolytes may pave the way for novel types of rechargeable, sustainable, and cheap batteries with high volumetric and gravimetric capacities. There are, however, currently no solid-state magnesium electrolytes that fulfill the requirements for solid-state battery applications. Here, we present the synthesis, structure, and properties of six new methylamine magnesium borohydride compounds, α- and β-Mg­(BH4)2·6CH3NH2, Mg­(BH4)2·3CH3NH2, and α-, α′- and β-Mg­(BH4)2·CH3NH2. The β-Mg­(BH4)2·CH3NH2 polymorph displays a record high Mg2+ ionic conductivity of σ­(Mg2+) = 1.50 × 10–4 S cm–1 at room temperature. The high Mg2+ conductivity of β-Mg­(BH4)·CH3NH2 is facilitated by a one-dimensional chain-like structure interconnected by weak dihydrogen bonds and dispersion interactions, forming a migration pathway across the chains. The oxidative stability of Mg­(BH4)2·CH3NH2 is ∼1.2 V vs Mg/Mg2+, and the reversible plating and stripping were confirmed by cyclic voltammetry and symmetric cell cycling, revealing high stability toward magnesium electrodes for at least 50 cycles at 60 °C.

Keywords

A-, All-solid-state, Mg/Mg2+, Mg2, S cm–1, applications, battery, battery applications, bonds, borohydride, borohydride compounds, capacity, cell cycle, chain, chain-like structure, compounds, conductivity, cycle, cyclic voltammetry, dihydrogen bonds, dispersion, dispersion interactions, electrode, electrolyte, gravimetric capacity, high Mg2, interaction, ionic conductivity, magnesium, magnesium batteries, magnesium borohydride, magnesium electrode, magnesium electrolytes, methylamine, migration, migration pathways, novel type, one-dimensional chain-like structure, oxidative stability, pathway, plate, polymorphism, properties, recharge, requirements, reverse plating, room, room temperature, solid-state battery applications, stability, strips, structure, symmetric cell cycling, synthesis, temperature, type, voltammetry, volumetric, weak dihydrogen bonds

Funders

  • Danish Agency for Science and Higher Education
  • Carlsberg Foundation

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