Rapid, Micron‐Resolution 3D Printing of Nd:YAG Ceramic with Optical Gain

Author:

Liu Luyang1ORCID,Wang Wenbo1ORCID,Feng Shuai2,Liu Siying12,Sun Haofan2,Nian Qiong2ORCID,Yang Sui2ORCID,Chen Xiangfan1ORCID

Affiliation:

1. School of Manufacturing Systems and Networks Arizona State University Mesa AZ 85212 USA

2. School for Engineering of Matter Transport & Energy Arizona State University Tempe AZ 85287 USA

Abstract

AbstractPolycrystalline yttrium aluminum garnet (YAG) ceramic doped with neodymium (Nd), referred to as Nd:YAG, is widely used in solid‐state lasers. However, conventional powder metallurgy methods suffer from expenses, time consumption, and limitations in customizing structures. This study introduces a novel approach for creating Nd:YAG ceramics with 3D free‐form structures from micron (∼70 µm) to centimeter scales. Firstly, sol‐gel synthesis is employed to form photocurable colloidal solutions. Subsequently, by utilizing a home‐built micro‐continuous liquid interface printing process, precursors are printed into 3D poly(acrylic acid) hydrogels containing yttrium, aluminum, and neodymium hydroxides, with a resolution of 5.8 µm pixel−1 at a speed of 10 µm s−1. After the hydrogels undergo thermal dehydration, debinding, and sintering, polycrystalline Nd:YAG ceramics featuring distinguishable grains are successfully produced. By optimizing the concentrations of the sintering aids (tetraethyl orthosilicate) and neodymium trichloride (NdCl3), the resultant samples exhibit satisfactory photoluminescence, emitting light concentrated at 1064 nm when stimulated by a 532 nm laser. Additionally, Nd:YAG ceramics with various 3D geometries (e.g., cone, spiral, and angled pillar) are printed and characterized, which demonstrates the potential for applications, such as laser and amplifier fibers, couplers, and splitters in optical circuits, as well as gain metamaterials or metasurfaces.

Funder

Gordon and Betty Moore Foundation

National Science Foundation

Publisher

Wiley

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