TY - JOUR
T1 - Prediction of two-dimensional nodal-line semimetals in a carbon nitride covalent network
AU - Chen, Haiyuan
AU - Zhang, Shunhong
AU - Jiang, Wei
AU - Zhang, Chunxiao
AU - Guo, Heng
AU - Liu, Zheng
AU - Wang, Zhiming
AU - Liu, Feng
AU - Niu, Xiaobin
N1 - Publisher Copyright:
© The Royal Society of Chemistry 2018.
PY - 2018
Y1 - 2018
N2 - Carbon nitride covalent compounds have emerged as a prominent member of 2D materials beyond graphene. The experimental realizations of 2D graphitic carbon nitride g-C3N4, nitrogenated holey graphene C2N, and polyaniline C3N have shown their promising potential in energy and environmental applications. In this work, we predict a new type of carbon nitride network with a C9N4 stoichiometry from first principles calculations. Unlike common C-N compounds and covalent organic frameworks (COFs), which are typically insulating, surprisingly C9N4 is found to be a 2D nodal-line semimetal. The nodal line in C9N4 forms a closed ring centered at the Γ point, which originates from the pz orbitals of both C and N. The linear crossing occurs right at the Fermi level contributed by two sets of dispersive Kagome and Dirac bands, which is robust due to negligible spin-orbit coupling in C and N. Furthermore, it is revealed that the degeneracy along the high-symmetry path is protected by out-of-plane mirror or C2 rotational symmetry, rather than in-plane mirror symmetry. The chemical potential difference between C and N, as validated by using a single orbital tight-binding model, plays a significant role in forming the nodal ring. Interestingly, a new structure of the nodal line, i.e., a nodal cylinder, is found in momentum space for AA-stacked C9N4. Our results indicate possible functionalization for a novel metal-free C-N covalent network with interesting semimetallic properties.
AB - Carbon nitride covalent compounds have emerged as a prominent member of 2D materials beyond graphene. The experimental realizations of 2D graphitic carbon nitride g-C3N4, nitrogenated holey graphene C2N, and polyaniline C3N have shown their promising potential in energy and environmental applications. In this work, we predict a new type of carbon nitride network with a C9N4 stoichiometry from first principles calculations. Unlike common C-N compounds and covalent organic frameworks (COFs), which are typically insulating, surprisingly C9N4 is found to be a 2D nodal-line semimetal. The nodal line in C9N4 forms a closed ring centered at the Γ point, which originates from the pz orbitals of both C and N. The linear crossing occurs right at the Fermi level contributed by two sets of dispersive Kagome and Dirac bands, which is robust due to negligible spin-orbit coupling in C and N. Furthermore, it is revealed that the degeneracy along the high-symmetry path is protected by out-of-plane mirror or C2 rotational symmetry, rather than in-plane mirror symmetry. The chemical potential difference between C and N, as validated by using a single orbital tight-binding model, plays a significant role in forming the nodal ring. Interestingly, a new structure of the nodal line, i.e., a nodal cylinder, is found in momentum space for AA-stacked C9N4. Our results indicate possible functionalization for a novel metal-free C-N covalent network with interesting semimetallic properties.
UR - http://www.scopus.com/inward/record.url?scp=85048742543&partnerID=8YFLogxK
U2 - 10.1039/c8ta02555j
DO - 10.1039/c8ta02555j
M3 - Article
AN - SCOPUS:85048742543
SN - 2050-7488
VL - 6
SP - 11252
EP - 11259
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 24
ER -