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Signatures of Wigner crystal of electrons in a monolayer semiconductor

机译:单层半导体中电子中的电子晶体的签名

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The signature of a Wigner crystal-the analogue of a solid phase for electrons-is observed via the optical reflection spectrum in a monolayer transition metal dichalcogenide.When the Coulomb repulsion between electrons dominates over their kinetic energy, electrons in two-dimensional systems are predicted to spontaneously break continuous-translation symmetry and form a quantum crystal(1). Efforts to observe(2-12) this elusive state of matter, termed a Wigner crystal, in two-dimensional extended systems have primarily focused on conductivity measurements on electrons confined to a single Landau level at high magnetic fields. Here we use optical spectroscopy to demonstrate that electrons in a monolayer semiconductor with density lower than 3 x 10(11) per centimetre squared form a Wigner crystal. The combination of a high electron effective mass and reduced dielectric screening enables us to observe electronic charge order even in the absence of a moire potential or an external magnetic field. The interactions between a resonantly injected exciton and electrons arranged in a periodic lattice modify the exciton bandstructure so that an umklapp resonance arises in the optical reflection spectrum, heralding the presence of charge order(13). Our findings demonstrate that charge-tunable transition metal dichalcogenide monolayers(14) enable the investigation of previously uncharted territory for many-body physics where interaction energy dominates over kinetic energy.
机译:Wigner晶体的标志 - 通过单层过渡金属二甲烷的光学反射谱观察电子反射谱的模拟。当电子之间的库仑排斥在其动能上,预测二维系统中的电子自发地破坏连续翻译对称性并形成量子晶体(1)。观察(2-12)在二维扩展系统中称为Wigner晶体的这种难以捉摸的物质状态主要集中在高磁场下被限制在单个Landau水平上的电导率测量。在这里,我们使用光学光谱证明单层半导体中的电子,密度低于3×10(11)/厘米平方,形成一个Wigner晶体。高电子有效质量和降低的电介质筛选的组合使我们能够在没有莫尔电位或外部磁场的情况下观察电子电荷顺序。在周期晶格中布置在周期性晶格中的谐振喷射的激子和电子之间的相互作用改变了激子带状结构,使得在光学反射光谱中产生UMKLAPP谐振,覆盖充电顺序(13)的存在。我们的研究结果表明,电荷可调过渡金属二甲甲基二甲胺单层(14)能够对许多身体物理学进行先前未明确的领域,其中相互作用能量在动能上占主导地位。

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  • 来源
    《Nature》 |2021年第7865期|53-57|共5页
  • 作者单位

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Harvard Univ Dept Phys Cambridge MA 02138 USA;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland|Tech Univ Munich Dept Phys Garching Germany|Tech Univ Munich Inst Adv Study Garching Germany|Munchen Ctr Quantum Sci & Technol Munich Germany;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

    Natl Inst Mat Sci Res Ctr Funct Mat Tsukuba Ibaraki Japan;

    Natl Inst Mat Sci Int Ctr Mat Nanoarchitecton Tsukuba Ibaraki Japan;

    Harvard Univ Dept Phys Cambridge MA 02138 USA;

    Harvard Univ Dept Phys Cambridge MA 02138 USA|Swiss Fed Inst Technol Inst Theoret Phys Zurich Switzerland;

    Swiss Fed Inst Technol Inst Quantum Elect Zurich Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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