Probing Hyperbolic Shear Polaritons in β‐Ga2O3 Nanostructures Using STEM‐EELS

Author:

Zhang Zhenyu12,Wang Tao12,Jiang Hailing1,Qi Ruishi2,Li Yuehui23,Wang Jinlin1,Sheng Shanshan1,Li Ning2,Shi Ruochen2,Wei Jiaqi1,Liu Fang1,Zhang Shengnan4,Huo Xiaoqing4,Du Jinlong2,Zhang Jingmin2,Xu Jun2,Rong Xin1,Gao Peng235,Shen Bo156,Wang Xinqiang156ORCID

Affiliation:

1. State Key Laboratory for Mesoscopic Physics and Frontiers Science Center for Nano‐Optoelectronics School of Physics Peking University Beijing 100871 China

2. Electron Microscopy Laboratory School of Physics Peking University Beijing 100871 China

3. International Center for Quantum Materials School of Physics Peking University Beijing 100871 China

4. The 46th Research Institute China Electronics Technology Group Corporation (CETC) Tianjin 300220 China

5. Collaborative Innovation Center of Quantum Matter Peking University Beijing 100871 China

6. Peking University Yangtze Delta Institute of Optoelectronics Nantong Jiangsu 226010 China

Abstract

AbstractPhonon polaritons, quasiparticles arising from strong coupling between electromagnetic waves and optical phonons, have potential for applications in subdiffraction imaging, sensing, thermal conduction enhancement, and spectroscopy signal enhancement. A new class of phonon polaritons in low‐symmetry monoclinic crystals, hyperbolic shear polaritons (HShPs), have been verified recently in β‐Ga2O3 by free electron laser (FEL) measurements. However, detailed behaviors of HShPs in β‐Ga2O3 nanostructures still remain unknown. Here, by using monochromatic electron energy loss spectroscopy in conjunction with scanning transmission electron microscopy, the experimental observation of multiple HShPs in β‐Ga2O3 in the mid‐infrared (MIR) and far‐infrared (FIR) ranges is reported. HShPs in various β‐Ga2O3 nanorods and a β‐Ga2O3 nanodisk are excited. The frequency‐dependent rotation and shear effect of HShPs reflect on the distribution of EELS signals. The propagation and reflection of HShPs in nanostructures are clarified by simulations of electric field distribution. These findings suggest that, with its tunable broad spectral HShPs, β‐Ga2O3 is an excellent candidate for nanophotonic applications.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Beijing Municipality

Publisher

Wiley

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