Topological nodal line semimetals in graphene network structures

Topological semimetals are a fascinating class of quantum materials that possess extraordinary electronic and transport properties. These materials have attracted great interests in recent years for their fundamental significance and potential device applications. There have been intensive studies s...

Full description

Bibliographic Details
Main Authors: Jian-Tao Wang, Hongming Weng, Changfeng Chen
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Advances in Physics: X
Subjects:
Online Access:http://dx.doi.org/10.1080/23746149.2019.1625724
id doaj-58e24e24352940f1b062ac484b327d30
record_format Article
spelling doaj-58e24e24352940f1b062ac484b327d302020-11-25T02:21:27ZengTaylor & Francis GroupAdvances in Physics: X2374-61492019-01-014110.1080/23746149.2019.16257241625724Topological nodal line semimetals in graphene network structuresJian-Tao Wang0Hongming Weng1Changfeng Chen2Institute of Physics, Chinese Academy of SciencesInstitute of Physics, Chinese Academy of SciencesUniversity of NevadaTopological semimetals are a fascinating class of quantum materials that possess extraordinary electronic and transport properties. These materials have attracted great interests in recent years for their fundamental significance and potential device applications. There have been intensive studies suggested that three-dimensional graphene networks support topological semimetals with two types of continuous nodal lines: one is to form closed nodal rings in Brillouin zone and the other ones traversing the whole Brillouin zone to be periodically connected. Carbon has negligible spin-orbit coupling, non-magnetism and great diversity of allotropes, which makes it very promising in realizing topological nodal line semimetals. Here we review recent efforts in proposing various carbon allotropes to realize these two types of nodal line semimetals. The nodal rings or lines are protected by the coexistence of time reversal and spatial inversion symmetries. When projecting these nodal lines or rings onto the certain surface, drumhead like surface flat bands will appear. Based on these flat bands, Chern insulator and high-temperature superconductor will be induced by electron-electron correlation effects. The recent discoveries of Mott insulator and superconductor in twisted bilayer graphene-related with flat bands have made these reviewed efforts very important and meaningful.http://dx.doi.org/10.1080/23746149.2019.1625724carbonnodal line semimetalab initio calculations
collection DOAJ
language English
format Article
sources DOAJ
author Jian-Tao Wang
Hongming Weng
Changfeng Chen
spellingShingle Jian-Tao Wang
Hongming Weng
Changfeng Chen
Topological nodal line semimetals in graphene network structures
Advances in Physics: X
carbon
nodal line semimetal
ab initio calculations
author_facet Jian-Tao Wang
Hongming Weng
Changfeng Chen
author_sort Jian-Tao Wang
title Topological nodal line semimetals in graphene network structures
title_short Topological nodal line semimetals in graphene network structures
title_full Topological nodal line semimetals in graphene network structures
title_fullStr Topological nodal line semimetals in graphene network structures
title_full_unstemmed Topological nodal line semimetals in graphene network structures
title_sort topological nodal line semimetals in graphene network structures
publisher Taylor & Francis Group
series Advances in Physics: X
issn 2374-6149
publishDate 2019-01-01
description Topological semimetals are a fascinating class of quantum materials that possess extraordinary electronic and transport properties. These materials have attracted great interests in recent years for their fundamental significance and potential device applications. There have been intensive studies suggested that three-dimensional graphene networks support topological semimetals with two types of continuous nodal lines: one is to form closed nodal rings in Brillouin zone and the other ones traversing the whole Brillouin zone to be periodically connected. Carbon has negligible spin-orbit coupling, non-magnetism and great diversity of allotropes, which makes it very promising in realizing topological nodal line semimetals. Here we review recent efforts in proposing various carbon allotropes to realize these two types of nodal line semimetals. The nodal rings or lines are protected by the coexistence of time reversal and spatial inversion symmetries. When projecting these nodal lines or rings onto the certain surface, drumhead like surface flat bands will appear. Based on these flat bands, Chern insulator and high-temperature superconductor will be induced by electron-electron correlation effects. The recent discoveries of Mott insulator and superconductor in twisted bilayer graphene-related with flat bands have made these reviewed efforts very important and meaningful.
topic carbon
nodal line semimetal
ab initio calculations
url http://dx.doi.org/10.1080/23746149.2019.1625724
work_keys_str_mv AT jiantaowang topologicalnodallinesemimetalsingraphenenetworkstructures
AT hongmingweng topologicalnodallinesemimetalsingraphenenetworkstructures
AT changfengchen topologicalnodallinesemimetalsingraphenenetworkstructures
_version_ 1724865982764154880