TY - JOUR
T1 - Multiple Quantum States Induced in 1T-TaSe2 by Controlling the Stacking Order of Charge Density Waves
AU - Wang, Wei
AU - Zhao, Bingbing
AU - Ming, Xing
AU - Si, Chen
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/5/12
Y1 - 2023/5/12
N2 - Van der Waals (vdW) materials afford unprecedented opportunities for control of electronic properties by utilizing the stacking degree of freedom. An intriguing frontier, largely unexplored, is the stacking of charge density wave (CDW) phases that is a broken-symmetry state with periodically modulated charge density and the atomic lattice. Employing density functional theory, it is uncovered that the stacking order can play a significant role in the quantum phase transitions of layered 1T-TaSe2 with a striking 2D CDW order. By controlling the vertical stacking order of CDWs, bulk 1T-TaSe2 can host various electronic phases including quasi-1D and 3D metals and band insulators. Particularly, the ground-state stacking configuration shows 3D metallicity due to the enhanced intralayer and interlayer electron hopping, and the second lowest energy configuration shows band insulating behavior via interlayer dimerization, implying potential metal-insulator transition. In ultrathin-layer 1T-TaSe2, not only the stacking order but also the thickness dictate the electronic properties. While the monolayer is a Mott insulator, the bilayer (trilayer) is a band insulator (metal). More interestingly, the four-layer emerges as an insulator or a semimetal dependent on its stacking order. The wide-tunable electronic properties of 1T-TaSe2 CDW compound will open a new pathway for designing novel quantum devices.
AB - Van der Waals (vdW) materials afford unprecedented opportunities for control of electronic properties by utilizing the stacking degree of freedom. An intriguing frontier, largely unexplored, is the stacking of charge density wave (CDW) phases that is a broken-symmetry state with periodically modulated charge density and the atomic lattice. Employing density functional theory, it is uncovered that the stacking order can play a significant role in the quantum phase transitions of layered 1T-TaSe2 with a striking 2D CDW order. By controlling the vertical stacking order of CDWs, bulk 1T-TaSe2 can host various electronic phases including quasi-1D and 3D metals and band insulators. Particularly, the ground-state stacking configuration shows 3D metallicity due to the enhanced intralayer and interlayer electron hopping, and the second lowest energy configuration shows band insulating behavior via interlayer dimerization, implying potential metal-insulator transition. In ultrathin-layer 1T-TaSe2, not only the stacking order but also the thickness dictate the electronic properties. While the monolayer is a Mott insulator, the bilayer (trilayer) is a band insulator (metal). More interestingly, the four-layer emerges as an insulator or a semimetal dependent on its stacking order. The wide-tunable electronic properties of 1T-TaSe2 CDW compound will open a new pathway for designing novel quantum devices.
KW - charge density waves
KW - electronic properties
KW - first-principles calculations
KW - stacking effects
KW - thicknesses
UR - https://www.scopus.com/pages/publications/85148588412
U2 - 10.1002/adfm.202214583
DO - 10.1002/adfm.202214583
M3 - 文章
AN - SCOPUS:85148588412
SN - 1616-301X
VL - 33
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 20
M1 - 2214583
ER -