Issue 41, 2024

A superatom-assembled B8N2 monolayer acting as an electronic sponge for high-capacity anode materials for Na/K-ion batteries

Abstract

Rechargeable sodium/potassium-ion batteries (SIBs/PIBs) have emerged as appealing alternatives for lithium-ion batteries due to their earth-abundance and economic benefits. However, exploring high-capacity anode materials for SIBs/PIBs is still challenging. Superatoms with delocalized electronic shells possess high flexibility as electron-acceptors/donors, making them ideal candidates for anode materials. Here, a superatom-assembled boron nitride monolayer (B8N2) was theoretically predicted using first principles calculations. The B8 core is assembled with two B4 superatoms, and further linked by nitrogen atoms in a graphene-like lattice. The B8N2 monolayer has an undirected bandgap (0.82 eV/HSE06) with an ultra-high carrier mobility of 13 × 104 cm2 V−1 s−1, where Na/K ions can be effectively adsorbed on its surface. The remarkably high theoretical storage capacities (924 mA h g−1/1115 mA h g−1), and low open-circuit voltages (0.08 V/0.21 V) are also revealed for the B8N2 monolayer with Na/K ions. Intriguingly, adsorption of Na/K ions causes little geometric deformation of the B8N2 monolayer, which ensures a promising cell operating cycle during the adsorption of Na/K ions at high concentrations. This work reveals the potential of superatoms as an efficient “electronic sponge”, providing impetus for the design of superatomic electrode materials for metal ion batteries.

Graphical abstract: A superatom-assembled B8N2 monolayer acting as an electronic sponge for high-capacity anode materials for Na/K-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
25 Jul 2024
Accepted
27 Sep 2024
First published
30 Sep 2024

Phys. Chem. Chem. Phys., 2024,26, 26517-26525

A superatom-assembled B8N2 monolayer acting as an electronic sponge for high-capacity anode materials for Na/K-ion batteries

K. Shen, L. Cheng and C. Xu, Phys. Chem. Chem. Phys., 2024, 26, 26517 DOI: 10.1039/D4CP02942A

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