Quantum confining excitons with moiré ferroelectrics

ORAL

Abstract

Confining optically bright excitons is a long-standing goal to realize strong interacting excitons and quantum light generation. However, unlike electrons which can be readily controlled via electric field, imposing strong nanoscale potential on excitons for quantum confinement has been challenging. Here, we integrate the twisted hBN with the monolayer MoSe2 and observe strong confinement of the neutral excitons and polarons at the ferroelectric domain boundaries of hBN. This quantum confinement effect is highly dependent on the sizes of the ferroelectric domains. Furthermore, we show evidence that excitons are confined in a one-dimensional fashion along the domain walls. Our results pave the way for studying strongly interacting excitons and photons, and novel ferroelectric control mechanisms for classical and quantum optoelectronics.

*This research is primarily supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences Early Career Research Program under Award No. DE-SC-0022885. The fabrication of samples is supported by the National Science Foundation CAREER Award under Award No. DMR-2145712. This research used Quantum Material Press (QPress) of the Center for Functional Nanomaterials (CFN), which is a U.S. Department of Energy Office of Science User Facility, at Brookhaven National Laboratory under Contract No. DE-SC0012704. K.W. and T.T. acknowledge support from the JSPS KAKENHI (Grant Numbers 20H00354, 21H05233 and 23H02052) and World Premier International Research Center Initiative (WPI), MEXT, Japan for hBN synthesis.

Presenters

  • Liuxin Gu

    • University of Maryland College Park

Authors

  • Liuxin Gu

    • University of Maryland College Park
  • You Zhou

    • University of Maryland College Park
  • Lifu Zhang

    • University of Maryland, College Park
  • Sam Felsenfeld

    • University of Maryland,College Park
  • Rundong Ma

    • University of Maryland,College Park
  • Suji Park

    • Brookhaven National Laboratory
  • Houk Jang

    • Brookhaven National Laboratory