Electrical control of neutral and charged excitons in a monolayer semiconductor

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作者
Jason S. Ross
Sanfeng Wu
Hongyi Yu
Nirmal J. Ghimire
Aaron M. Jones
Grant Aivazian
Jiaqiang Yan
David G. Mandrus
Di Xiao
Wang Yao
Xiaodong Xu
机构
[1] University of Washington,Department of Material Science and Engineering
[2] University of Washington,Department of Physics
[3] University of Hong Kong,Department of Physics and Center of Theoretical and Computational Physics
[4] University of Tennessee,Department of Physics and Astronomy
[5] Oak Ridge National Laboratory,Materials Science and Technology Division
[6] University of Tennessee,Department of Materials Science and Engineering
[7] Carnegie Mellon University,Department of Physics
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Monolayer group-VI transition metal dichalcogenides have recently emerged as semiconducting alternatives to graphene in which the true two-dimensionality is expected to illuminate new semiconducting physics. Here we investigate excitons and trions (their singly charged counterparts), which have thus far been challenging to generate and control in the ultimate two-dimensional limit. Utilizing high-quality monolayer molybdenum diselenide, we report the unambiguous observation and electrostatic tunability of charging effects in positively charged (X+), neutral (Xo) and negatively charged (X−) excitons in field-effect transistors via photoluminescence. The trion charging energy is large (30 meV), enhanced by strong confinement and heavy effective masses, whereas the linewidth is narrow (5 meV) at temperatures <55 K. This is greater spectral contrast than in any known quasi-two-dimensional system. We also find the charging energies for X+ and X− to be nearly identical implying the same effective mass for electrons and holes.
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