TY - JOUR
T1 - Transition metal nitrides for electrochemical energy applications
AU - Wang, Hao
AU - Li, Jianmin
AU - Li, Ke
AU - Lin, Yanping
AU - Chen, Jianmei
AU - Gao, Lijun
AU - Nicolosi, Valeria
AU - Xiao, Xu
AU - Lee, Jong Min
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2021/1/21
Y1 - 2021/1/21
N2 - Transition metal nitrides (TMNs), by virtue of their unique electronic structure, high electrical conductivity, superior chemical stability, and excellent mechanical robustness, have triggered tremendous research interest over the past decade, and showed great potential for electrochemical energy conversion and storage. However, bulk TMNs usually suffer from limited numbers of active sites and sluggish ionic kinetics, and eventually ordinary electrochemical performance. Designing nanostructured TMNs with tailored morphology and good dispersity has proved an effective strategy to address these issues, which provides a larger specific surface area, more abundant active sites, and shorter ion and mass transport distances over the bulk counterparts. Herein, the most up-To-date progress on TMN-based nanomaterials is comprehensively reviewed, focusing on geometric-structure design, electronic-structure engineering, and applications in electrochemical energy conversion and storage, including electrocatalysis, supercapacitors, and rechargeable batteries. Finally, we outline the future challenges of TMN-based nanomaterials and their possible research directions beyond electrochemical energy applications.
AB - Transition metal nitrides (TMNs), by virtue of their unique electronic structure, high electrical conductivity, superior chemical stability, and excellent mechanical robustness, have triggered tremendous research interest over the past decade, and showed great potential for electrochemical energy conversion and storage. However, bulk TMNs usually suffer from limited numbers of active sites and sluggish ionic kinetics, and eventually ordinary electrochemical performance. Designing nanostructured TMNs with tailored morphology and good dispersity has proved an effective strategy to address these issues, which provides a larger specific surface area, more abundant active sites, and shorter ion and mass transport distances over the bulk counterparts. Herein, the most up-To-date progress on TMN-based nanomaterials is comprehensively reviewed, focusing on geometric-structure design, electronic-structure engineering, and applications in electrochemical energy conversion and storage, including electrocatalysis, supercapacitors, and rechargeable batteries. Finally, we outline the future challenges of TMN-based nanomaterials and their possible research directions beyond electrochemical energy applications.
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U2 - 10.1039/d0cs00415d
DO - 10.1039/d0cs00415d
M3 - Review article
C2 - 33295369
AN - SCOPUS:85100602842
SN - 0306-0012
VL - 50
SP - 1354
EP - 1390
JO - Chemical Society Reviews
JF - Chemical Society Reviews
IS - 2
ER -