Tunable Phonon Polariton Hybridization in a Van der Waals Hetero‐Bicrystal

Author:

Wehmeier Lukas12ORCID,Yu Shang‐Jie3,Chen Xinzhong24,Mayer Rafael A.2,Xiong Langlang5,Yao Helen67,Jiang Yue8,Hu Jenny79,Janzen Eli10,Edgar James H.10,Zheng Xiaolin8,Heinz Tony F.79,Basov D. N.4,Homes Christopher C.1ORCID,Hu Guangwei5,Carr G. Lawrence1ORCID,Liu Mengkun12,Fan Jonathan A.3

Affiliation:

1. National Synchrotron Light Source II Brookhaven National Laboratory Upton NY 11973 USA

2. Department of Physics and Astronomy Stony Brook University Stony Brook NY 11794 USA

3. Department of Electrical Engineering Stanford University Stanford CA 94305 USA

4. Department of Physics Columbia University New York NY 10027 USA

5. Nanyang Technological University School of Electrical and Electronic Engineering Singapore 637371

6. Department of Materials Science and Engineering Stanford University Stanford CA 94305 USA

7. SLAC National Accelerator Laboratory Menlo Park CA 94025 USA

8. Department of Mechanical Engineering Stanford University Stanford CA 94305 USA

9. Department of Applied Physics Stanford University Stanford CA 94305 USA

10. Tim Taylor Department of Chemical Engineering, Durland Hall Kansas State University Manhattan KS 66506 USA

Abstract

AbstractPhonon polaritons, the hybrid quasiparticles resulting from the coupling of photons and lattice vibrations, have gained significant attention in the field of layered van der Waals heterostructures. Particular interest has been paid to hetero‐bicrystals composed of molybdenum oxide (MoO3) and hexagonal boron nitride (hBN), which feature polariton dispersion tailorable via avoided polariton mode crossings. In this work, the polariton eigenmodes in MoO3‐hBN hetero‐bicrystals self‐assembled on ultrasmooth gold are systematically studied using synchrotron infrared nanospectroscopy. It is experimentally demonstrated that the spectral gap in bicrystal dispersion and corresponding regimes of negative refraction can be tuned by material layer thickness, and these results are quantitatively matched with a simple analytic model. Polaritonic cavity modes and polariton propagation along “forbidden” directions are also investigated in microscale bicrystals, which arise from the finite in‐plane dimension of the synthesized MoO3 micro‐ribbons. The findings shed light on the unique dispersion properties of polaritons in van der Waals heterostructures and pave the way for applications leveraging deeply sub‐wavelength mid‐infrared light‐matter interactions.

Funder

National Science Foundation

Air Force Office of Scientific Research

Fundação de Amparo à Pesquisa do Estado de São Paulo

Office of Naval Research

Gordon and Betty Moore Foundation

U.S. Department of Energy

Brookhaven National Laboratory

National Research Foundation Singapore

Ministry of Education - Singapore

NTT Research

Publisher

Wiley

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