Development and characteristics of infrared gradient refractive index chalcogenide glasses by hot pressing

Author:

Gui Yiming123,Guan Yongnian12,Zhang Xusheng12,Zhang Chunqiu12,Xia Kelun4,He Lelu12,Shen Xiang1234,Liu Zijun1234ORCID

Affiliation:

1. Advanced Technology Research Institute, Ningbo University

2. Key Laboratory of Photoelectric Detection Materials and Devices of Zhejiang Province

3. Engineering Research Center for Advanced Infrared Photoelectric Materials and Devices of Zhejiang Province

4. Ningbo Institute of Oceanography

Abstract

Compared with ordinary uniform lenses, the length and refractive index distribution of gradient refractive index (GRIN) lenses can effectively correct aberration and chromatic aberration. This advantage makes the miniaturization, integration, and lens lightweight possible. Although the visible GRIN lenses based on silicate glass are widely used, the infrared GRIN lenses based on chalcogenide glass are still elusive. This paper introduces a new method for preparing this kind of lens by hot pressing sintering diffusion of chalcogenide glasses. A series of chalcogenide glasses Ge10As22Se68-xSx (x = 4, 7, 10, 14, 24, 28, 34 mol%) with refractive index range from 2.37 to 2.57 (n@8 µm) and similar glass transition temperature (ΔTg < 10℃) were prepared by melt quenching. The relationship between Raman peaks and the refractive index of glasses was studied. Furthermore, the refractive index profile formed by elemental diffusion was characterized by Raman signals. The results show that the diffusion length reaches more than 290 µm, and larger diffusion distances can be achieved by stacking multiple layers. The obtained GRIN glass maintains good transmittance in the whole atmospheric window of 2 ∼ 12 µm.

Funder

National Natural Science Foundation of China

the Key Research and Development Program of Zhejiang Province

the Fundamental Research Funds for the Provincial Universities of Zhejiang

K. C. Wong Magna Fund at Ningbo University

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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