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A lithiophilic TiN-carbon scaffold for lithium-metal anodes, with SEI ionic conductivity boosted by Li3N formation

A lithiophilic TiN-carbon scaffold for lithium-metal anodes, with SEI ionic conductivity boosted by Li3N formation
A lithiophilic TiN-carbon scaffold for lithium-metal anodes, with SEI ionic conductivity boosted by Li3N formation
Self-supporting TiN-modified carbon fibre electrodes (TiN@C) were prepared by a simple nitriding process and tested as lithiophilic, 3D, conductive skeletons. The TiN@C hosts have homogenously distributed lithiophilic nucleation sites and develop a Li3N-rich secondary electrolyte interphase layer with high ionic conductivity. Their improved kinetic performance relative to carbon frameworks, including charge and mass transfer processes, are explored through various electrochemical tests, ex situ characterisation of the electrodes and theoretical calculations. The assembled TiN@C electrodes achieve a dendrite-free morphology even at a relatively high capacity of 20 mA h cm-2. The high electronic conductivity of TiN@C and ionic conductivity of the Li3N formed in situ improve charge and mass transfer. The electrodes achieve a Coulombic efficiency over 99.3% and outstanding lifetime over 200 cycles with a low electroplating overpotential of -15 mV vs Li/Li+. Lithiated Li@TiN@C based symmetric cells and full cells assembled with LiFePO4 both exhibit better cycling stability and rate performance compared with Li@C cells made similarly.
2050-7488
28941-28953
Wang, Junren
78a8d0c3-7442-4d45-a1c3-718a357aa2cb
Cao, Huaxin
346a2f7d-053e-4903-88cf-9e7fec06c90b
Zhelev, Nikolay
76a8a0dd-0c24-4483-a217-b17ee26bd79b
Russell, Andrea E.
b6b7c748-efc1-4d5d-8a7a-8e4b69396169
Hector, Andrew L.
f19a8f31-b37f-4474-b32a-b7cf05b9f0e5
Wang, Junren
78a8d0c3-7442-4d45-a1c3-718a357aa2cb
Cao, Huaxin
346a2f7d-053e-4903-88cf-9e7fec06c90b
Zhelev, Nikolay
76a8a0dd-0c24-4483-a217-b17ee26bd79b
Russell, Andrea E.
b6b7c748-efc1-4d5d-8a7a-8e4b69396169
Hector, Andrew L.
f19a8f31-b37f-4474-b32a-b7cf05b9f0e5

Wang, Junren, Cao, Huaxin, Zhelev, Nikolay, Russell, Andrea E. and Hector, Andrew L. (2026) A lithiophilic TiN-carbon scaffold for lithium-metal anodes, with SEI ionic conductivity boosted by Li3N formation. Journal of Materials Chemistry A, 14 (43), 28941-28953. (doi:10.1039/D6TA00666C).

Record type: Article

Abstract

Self-supporting TiN-modified carbon fibre electrodes (TiN@C) were prepared by a simple nitriding process and tested as lithiophilic, 3D, conductive skeletons. The TiN@C hosts have homogenously distributed lithiophilic nucleation sites and develop a Li3N-rich secondary electrolyte interphase layer with high ionic conductivity. Their improved kinetic performance relative to carbon frameworks, including charge and mass transfer processes, are explored through various electrochemical tests, ex situ characterisation of the electrodes and theoretical calculations. The assembled TiN@C electrodes achieve a dendrite-free morphology even at a relatively high capacity of 20 mA h cm-2. The high electronic conductivity of TiN@C and ionic conductivity of the Li3N formed in situ improve charge and mass transfer. The electrodes achieve a Coulombic efficiency over 99.3% and outstanding lifetime over 200 cycles with a low electroplating overpotential of -15 mV vs Li/Li+. Lithiated Li@TiN@C based symmetric cells and full cells assembled with LiFePO4 both exhibit better cycling stability and rate performance compared with Li@C cells made similarly.

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TiN@C 2nd revision - Accepted Manuscript
Available under License Creative Commons Attribution.
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More information

Accepted/In Press date: 22 May 2026
e-pub ahead of print date: 8 June 2026
Additional Information: Publisher Copyright: This journal is © The Royal Society of Chemistry, 2026.

Identifiers

Local EPrints ID: 512462
URI: http://eprints.soton.ac.uk/id/eprint/512462
ISSN: 2050-7488
PURE UUID: 00a10610-1649-4bca-a3a9-ef5a034fcf8d
ORCID for Andrea E. Russell: ORCID iD orcid.org/0000-0002-8382-6443
ORCID for Andrew L. Hector: ORCID iD orcid.org/0000-0002-9964-2163

Catalogue record

Date deposited: 30 Jun 2026 16:57
Last modified: 12 Aug 2026 01:49

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Contributors

Author: Junren Wang
Author: Huaxin Cao
Author: Nikolay Zhelev

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