TY - JOUR
T1 - Fourier-Tailored Light-Matter Coupling in van der Waals Heterostructures
AU - Danielsen, Dorte Rubæk
AU - Lassaline, Nolan
AU - Linde, Sander Jæger
AU - Nielsen, Magnus Vejby
AU - Zambrana-Puyalto, Xavier
AU - Sarbajna, Avishek
AU - Nguyen, Duc Hieu
AU - Booth, Timothy J.
AU - Leitherer-Stenger, Nicolas
AU - Raza, Søren
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025
Y1 - 2025
N2 - Dielectric structures can support low-absorption optical modes, which are attractive for engineering light-matter interactions with excitonic resonances in two-dimensional (2D) materials. However, the coupling strength is often limited by the electromagnetic field being confined inside the dielectric, reducing the spatial overlap with the active excitonic material. Here, we demonstrate a scheme for enhanced light-matter coupling by embedding excitonic tungsten disulfide (WS2) within dielectric hexagonal boron nitride (hBN), forming a van der Waals (vdW) heterostructure that optimizes the field overlap and alignment between excitons and optical waveguide modes. To tailor diffractive coupling between free-space light and the waveguide modes in the vdW heterostructure, we fabricate Fourier surfaces in the top hBN layer by using thermal scanning-probe lithography and etching, producing sinusoidal topographic landscapes with nanometer precision. We observe the formation of exciton-polaritons with a Rabi splitting indicating that the system is at the onset of strong coupling. These results demonstrate the potential of Fourier-tailored vdW heterostructures for exploring advanced optoelectronic and quantum devices.
AB - Dielectric structures can support low-absorption optical modes, which are attractive for engineering light-matter interactions with excitonic resonances in two-dimensional (2D) materials. However, the coupling strength is often limited by the electromagnetic field being confined inside the dielectric, reducing the spatial overlap with the active excitonic material. Here, we demonstrate a scheme for enhanced light-matter coupling by embedding excitonic tungsten disulfide (WS2) within dielectric hexagonal boron nitride (hBN), forming a van der Waals (vdW) heterostructure that optimizes the field overlap and alignment between excitons and optical waveguide modes. To tailor diffractive coupling between free-space light and the waveguide modes in the vdW heterostructure, we fabricate Fourier surfaces in the top hBN layer by using thermal scanning-probe lithography and etching, producing sinusoidal topographic landscapes with nanometer precision. We observe the formation of exciton-polaritons with a Rabi splitting indicating that the system is at the onset of strong coupling. These results demonstrate the potential of Fourier-tailored vdW heterostructures for exploring advanced optoelectronic and quantum devices.
KW - 2D materials
KW - Fourier surfaces
KW - Light−matter coupling
KW - Thermal scanning-probe lithography
KW - Van der Waals heterostructures
U2 - 10.1021/acsnano.5c02025
DO - 10.1021/acsnano.5c02025
M3 - Journal article
C2 - 40420668
AN - SCOPUS:105006678718
SN - 1936-0851
VL - 19
SP - 20645
EP - 20654
JO - ACS Nano
JF - ACS Nano
IS - 22
ER -