4.8 Article

Phonon Polaritonics in Two-Dimensional Materials

期刊

NANO LETTERS
卷 19, 期 4, 页码 2653-2660

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.9b00518

关键词

Phonon polaritons; two-dimensional materials; polar materials; hexagonal boron nitride; light-matter interactions; quantum optics

资金

  1. DOE Computational Science Graduate Fellowship (CSGF) fellowship [DE-FG02-97ER25308]
  2. Danish Council for Independent Research [DFF-6108-00667]
  3. DOE Photonics at Thermodynamic Limits Energy Frontier Research Center [DE-SC0019140]

向作者/读者索取更多资源

Extreme confinement of electromagnetic energy by phonon polaritons holds the promise of strong and new forms of control over the dynamics of matter. To bring such control to the atomic-scale limit, it is important to consider phonon polaritons in two-dimensional (2D) systems. Recent studies have pointed out that in 2D, splitting between longitudinal and transverse optical (LO and TO) phonons is absent at the Gamma point, even for polar materials. Does this lack of LO-TO splitting imply the absence of a phonon polariton in polar monolayers? To answer this, we connect the microscopic phonon properties with the macroscopic electromagnetic response. Specifically, we derive a first-principles expression for the conductivity of a polar monolayer specified by the wave-vector-dependent LO and TO phonon dispersions. In the long-wavelength (local) limit, we find a universal form for the conductivity in terms of the LO phonon frequency at the Gamma point, its lifetime, and the group velocity of the LO phonon. Our analysis reveals that the phonon polariton of 2D is simply the LO phonon of the 2D system. For the specific example of hexagonal boron nitride (hBN), we estimate the confinement and propagation losses of the LO phonons, finding that high confinement and reasonable propagation quality factors coincide in regions that may be difficult to detect with current near-field optical microscopy techniques. Finally, we study the interaction of external emitters with 2D hBN nanostructures, finding an extreme enhancement of spontaneous emission due to coupling with localized 2D phonon polaritons and the possibility of multimode strong and ultrastrong coupling between an external emitter and hBN phonons. This may lead to the design of new hybrid states of electrons and phonons based on strong coupling.

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