Article, 2024

Linear Electro‐Optic Effect in 2D Ferroelectric for Electrically Tunable Metalens

Advanced Materials, ISSN 1521-4095, 0935-9648, Page e2401838, 10.1002/adma.202401838

Contributors

Liu, Yuanda [1] Wu, Yaze 0000-0002-0734-0767 [2] Duan, Rui-Huan 0000-0003-4999-9735 [3] Fu, Jichao [1] Ovesen, Martin 0009-0008-6950-510X [4] Lai, Samuel Chang En [1] Yeo, Think‐E [1] Chee, Jing Yee 0000-0002-4505-7196 [1] Chen, Yunjie [1] Teo, Siew Lang [1] Tan, Hui Ru 0000-0003-4839-4515 [1] Zhang, Wang [5] Yang, Joel Kwang Wei 0000-0003-3301-1040 [5] Thygesen, Kristian Sommer 0000-0001-5197-214X [4] Liu, Zheng [3] Zhang, Yong-Wei 0000-0001-7255-1678 (Corresponding author) [2] Teng, Jing Hua 0000-0001-5331-3092 (Corresponding author) [1]

Affiliations

  1. [1] Institute of Materials Research and Engineering
  2. [NORA names: Singapore; Asia, South];
  3. [2] Institute of High Performance Computing
  4. [NORA names: Singapore; Asia, South];
  5. [3] Nanyang Technological University
  6. [NORA names: Singapore; Asia, South];
  7. [4] Technical University of Denmark
  8. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  9. [5] Singapore University of Technology and Design
  10. [NORA names: Singapore; Asia, South]

Abstract

The advent of 2D ferroelectrics, characterized by their spontaneous polarization states in layer-by-layer domains without the limitation of a finite size effect, brings enormous promise for applications in integrated optoelectronic devices. Comparing with semiconductor/insulator devices, ferroelectric devices show natural advantages such as non-volatility, low energy consumption and high response speed. Several 2D ferroelectric materials have been reported, however, the device implementation particularly for optoelectronic application remains largely hypothetical. Here, the linear electro-optic effect in 2D ferroelectrics is discovered and electrically tunable 2D ferroelectric metalens is demonstrated. The linear electric-field modulation of light is verified in 2D ferroelectric CuInP2S6. The in-plane phase retardation can be continuously tuned by a transverse DC electric field, yielding an effective electro-optic coefficient rc of 20.28 pm V-1. The CuInP2S6 crystal exhibits birefringence with the fast axis oriented along its (010) plane. The 2D ferroelectric Fresnel metalens shows efficacious focusing ability with an electrical modulation efficiency of the focusing exceeding 34%. The theoretical analysis uncovers the origin of the birefringence and unveil its ultralow light absorption across a wide wavelength range in this non-excitonic system. The van der Waals ferroelectrics enable room-temperature electrical modulation of light and offer the freedom of heterogeneous integration with silicon and another material system for highly compact and tunable photonics and metaoptics.

Keywords

CuInP, DC electric field, Van, ability, absorption, advantage, advent, analysis, applications, axis, birefringence, consumption, crystal, device implementation, devices, domain, effect, efficiency, electric field, electric-field modulation, electrical modulation, electricity, electro-optic effect, energy consumption, fast axis, ferroelectric devices, ferroelectric materials, ferroelectrics, field, finite size effects, focusing ability, freedom, heterogeneous integration, high response speed, implementation, integration, light absorption, limitations, linear electro-optic effect, low energy consumption, material systems, materials, metalens, metaoptics, modulation, modulation efficiency, natural advantages, non-volatile, optoelectronic applications, origin, phase retardation, photons, polarization state, response speed, retardation, semiconductor/insulator, silicon, size effect, speed, spontaneously polarized state, state, system, theoretical analysis, transverse dc electric field, tunable metalens, tunable photonics

Funders

  • National Research Foundation
  • Agency for Science, Technology and Research

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