AI Article Synopsis

  • The study focuses on enhancing quantum technologies using hexagonal boron nitride (hBN) due to its bright and stable optical properties, but current applications face challenges from random defect distributions.
  • Researchers used cathodoluminescence to successfully control and enhance color center emissions at the twisted interface of hBN flakes, showing increases in brightness by up to 100 times through twist angle adjustments and external voltage applications.
  • Their findings indicate that the emission is linked to nitrogen vacancies and enhanced by a twist-induced moiré potential, which also allows for the creation of nanoscale color center patterns using electron beams.

Article Abstract

The colour centre platform holds promise for quantum technologies, and hexagonal boron nitride has attracted attention due to the high brightness and stability, optically addressable spin states and wide wavelength coverage discovered in its emitters. However, its application is hindered by the typically random defect distribution and complex mesoscopic environment. Here, employing cathodoluminescence, we demonstrate on-demand activation and control of colour centre emission at the twisted interface of two hexagonal boron nitride flakes. Further, we show that colour centre emission brightness can be enhanced by two orders of magnitude by tuning the twist angle. Additionally, by applying an external voltage, nearly 100% brightness modulation is achieved. Our ab initio GW and GW plus Bethe-Salpeter equation calculations suggest that the emission is correlated to nitrogen vacancies and that a twist-induced moiré potential facilitates electron-hole recombination. This mechanism is further exploited to draw nanoscale colour centre patterns using electron beams.

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Source
http://dx.doi.org/10.1038/s41563-022-01303-4DOI Listing

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