Fluoride-based hydrogen bond chemistry in a layered double hydroxide cathode toward high-performance aqueous NH <sub>4</sub> <sup>+</sup> storage

F Fang-Fang Sun (Institute of Clean Energy Chemistry, Key Laboratory for Green Synthesis and Preparative Chemistry of Advanced Materials of Liaoning Province, College of Chemistry, Liaoning University) X Xinwei Guan (Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University) Z Zi-Hang Huang (Institute of Clean Energy Chemistry, Key Laboratory for Green Synthesis and Preparative Chemistry of Advanced Materials of Liaoning Province, College of Chemistry, Liaoning University) X Xu Han H Hui Li T Tianyi Ma (Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University)

Abstract

In aqueous ammonium-ion storage, hydrogen bonds play a pivotal role in the reversible insertion/extraction of NH 4 + within transition metal oxides/hydroxides. Although fluorine (F) is known for its strong electronegativity and potential to form robust hydrogen bonds with NH 4 + , its specific influence on NH 4 + storage remains unexplored. Herein, we systematically investigate the effects of F-based hydrogen bond chemistry within a layered double hydroxide matrix, where F species are introduced and subsequently partially removed via an electrochemical method. Our findings demonstrate that while increasing F doping content accelerates NH 4 + diffusion due to F’s strong electronegativity, it also triggers crystal shrinkage and depresses storage capacity. To this end, controlled partial removal of F, employing a lye-assistant electrochemical strategy, induces expanded interlayer spacing and distinct edge lattice tearing, thereby facilitating improved NH 4 + accommodation. The retained F sites couple with emerging exposed O sites maintain a high hydrogen bonding capability, which is further enhanced by the formation of highly active, curved hydroxyl groups centered around F sites. These manipulations significantly boost the NH 4 + storage performance of the electrode, providing insights into leveraging the strongest F-based hydrogen bond chemistry in developing high-performance ammonium-ion energy storage devices.

Article Details

Volume / Issue Vol. 122, Issue 8
Published February 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

F

Fang-Fang Sun

Institute of Clean Energy Chemistry, Key Laboratory for Green Synthesis and Preparative Chemistry of Advanced Materials of Liaoning Province, College of Chemistry, Liaoning University

X

Xinwei Guan

Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University

Z

Zi-Hang Huang

Institute of Clean Energy Chemistry, Key Laboratory for Green Synthesis and Preparative Chemistry of Advanced Materials of Liaoning Province, College of Chemistry, Liaoning University

X

Xu Han

H

Hui Li

T

Tianyi Ma

Centre for Atomaterials and Nanomanufacturing, School of Science, Royal Melbourne Institute of Technology University