Long-Range Lattice Engineering of MoTe2 by a 2D Electride

被引:82
|
作者
Kim, Sera [1 ]
Song, Seunghyun [2 ]
Park, Jongho [1 ,2 ]
Yu, Ho Sung [1 ,2 ]
Cho, Suyeon [2 ]
Kim, Dohyun [1 ]
Baik, Jaeyoon [3 ]
Choe, Duk-Hyun [4 ]
Chang, K. J. [4 ]
Lee, Young Hee [1 ,2 ]
Kim, Sung Wng [1 ]
Yang, Heejun [1 ]
机构
[1] Sungkyunkwan Univ, Dept Energy Sci, Suwon 16419, South Korea
[2] IBS, Ctr Integrated Nanostruct Phys, Suwon 16419, South Korea
[3] Pohang Univ Sci & Technol, Pohang Accelerator Lab, Pohang 790784, South Korea
[4] Korea Adv Inst Sci & Technol, Dept Phys, Daejeon 34141, South Korea
基金
新加坡国家研究基金会;
关键词
MoTe2; electride; doping; phase transition; electron diffusion; work function; ELECTRONIC-STRUCTURE; METAL TRANSITION; PHASE-TRANSITION; MOS2; RAMAN;
D O I
10.1021/acs.nanolett.6b05199
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Doping two-dimensional (2D) semiconductors beyond their degenerate levels provides the opportunity to investigate extreme carrier density-driven superconductivity and phase transition in 2D systems. Chemical functionalization and the ionic gating have achieved the high doping density, but their effective ranges have been limited to similar to 1 nm, which restricts the use of highly doped 2D semiconductors. Here, we report on electron diffusion from the 2D electride [Ca2N](+)e to MoTe2 over a distance of 100 nm from the contact interface, generating an electron doping density higher than 1.6 x 10(14) cm(2) and a lattice symmetry change of MoTe2 as a consequence of the extreme doping. The long-range lattice symmetry change, suggesting a length scale surpassing the depletion width of conventional metalsemiconductor junctions, was a consequence of the low work function (2.6 eV) with highly mobile anionic electron layers of [Ca2N](+)e . The combination of 2D electrides and layered materials yields a novel material design in terms of doping and lattice engineering.
引用
收藏
页码:3363 / 3368
页数:6
相关论文
共 50 条
  • [1] Multifunctional 2D MoTe2: Recent developments and future perspectives
    Sunny, Fency
    Lekha, C. S. Chitra
    Kalarikkal, Nandakumar
    Rout, C. S.
    Chakraborthy, Brahmananda
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2025, 58 (03)
  • [2] LONG-RANGE 2D INADEQUATE IN STRUCTURE DETERMINATION
    SCHRAML, J
    BLECHTA, V
    KRAHE, E
    COLLECTION OF CZECHOSLOVAK CHEMICAL COMMUNICATIONS, 1992, 57 (10) : 2005 - 2011
  • [3] Enhanced 1T′-Phase Stabilization and Chemical Reactivity in a MoTe2 Monolayer through Contact with a 2D Ca2N Electride
    Tang, Qing
    CHEMPHYSCHEM, 2019, 20 (04) : 595 - 601
  • [4] P/N-Type Conversion of 2D MoTe2 Controlled by Top Gate Engineering for Logic Circuits
    Cheng, Zhixuan
    Jia, Xionghui
    Han, Bo
    Li, Minglai
    Xu, Wanjin
    Li, Yanping
    Gao, Peng
    Dai, Lun
    ACS APPLIED MATERIALS & INTERFACES, 2024, 16 (28) : 36539 - 36546
  • [5] Enhancement of long-range correlations in a 2D vortex lattice by an incommensurate 1D disorder potential
    Guillamon, I.
    Cordoba, R.
    Sese, J.
    De Teresa, J. M.
    Ibarra, M. R.
    Vieira, S.
    Suderow, H.
    NATURE PHYSICS, 2014, 10 (11) : 851 - 856
  • [6] Enhancement of long-range correlations in a 2D vortex lattice by an incommensurate 1D disorder potential
    I. Guillamón
    R. Córdoba
    J. Sesé
    J. M. De Teresa
    M. R. Ibarra
    S. Vieira
    H. Suderow
    Nature Physics, 2014, 10 : 851 - 856
  • [7] STM/AFM investigations of β-MoTe2, α-MoTe2 and WTe2
    J. Stefan Inst, Ljubljana, Slovenia
    Surf Sci, (105-111):
  • [8] Long-range transport of 2D excitons with acoustic waves
    Peng, Ruoming
    Ripin, Adina
    Ye, Yusen
    Zhu, Jiayi
    Wu, Changming
    Lee, Seokhyeong
    Li, Huan
    Taniguchi, Takashi
    Watanabe, Kenji
    Cao, Ting
    Xu, Xiaodong
    Li, Mo
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [9] Supersymmetric model of a 2D long-range Bose liquid
    Feigelman, MV
    Skvortsov, MA
    NUCLEAR PHYSICS B, 1997, 506 (03) : 665 - 684
  • [10] Long-range transport of 2D excitons with acoustic waves
    Ruoming Peng
    Adina Ripin
    Yusen Ye
    Jiayi Zhu
    Changming Wu
    Seokhyeong Lee
    Huan Li
    Takashi Taniguchi
    Kenji Watanabe
    Ting Cao
    Xiaodong Xu
    Mo Li
    Nature Communications, 13