4.8 Review

Photonics with hexagonal boron nitride

期刊

NATURE REVIEWS MATERIALS
卷 4, 期 8, 页码 552-567

出版社

NATURE RESEARCH
DOI: 10.1038/s41578-019-0124-1

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资金

  1. Vanderbilt University
  2. National Science Foundation [CMMI 1538127]
  3. network GaNeX [ANR-11-LABX-0014]
  4. Australian Research Council [DP180100077]
  5. Asian Office of Aerospace Research and Development grant [FA2386-17-1-4064]
  6. Office of Naval Research Global [N62909-1-81-2025]
  7. Programmable Quantum Materials, an Energy Frontier Research Center - U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES) [DE-SC0019443]
  8. AFOSR [FA9550-15-1-0478]
  9. DOE-BES [DE-SC0018218]
  10. EPiQS Initiative Grant [GBMF4533]
  11. [ONR-N000014-18-1-2722]

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For more than seven decades, hexagonal boron nitride (hBN) has been employed as an inert, thermally stable engineering ceramic; since 2010, it has also been used as the optimal substrate for graphene in nanoelectronic and optoelectronic devices. Recent research has revealed that hBN exhibits a unique combination of optical properties that enable novel (nano) photonic functionalities. Specifically, hBN is a natural hyperbolic material in the mid-IR range, in which photonic material options are sparse. Furthermore, hBN hosts defects that can be engineered to obtain room-temperature, single-photon emission; exhibits strong second-order nonlinearities with broad implications for practical devices; and is a wide-bandgap semiconductor well suited for deep UV emitters and detectors. Inspired by these promising attributes, research on the properties of hBN and the development of large-area bulk and thin-film growth techniques has dramatically expanded. This Review offers a snapshot of current research exploring the properties underlying the use of hBN for future photonics functionalities and potential applications, and covers some of the remaining obstacles.

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