MgSiP2: An Infrared Nonlinear Optical Crystal with a Large Non‐Resonant Phase‐Matchable Second Harmonic Coefficient and High Laser Damage Threshold

Author:

He Jingyang1ORCID,Guan Yingdong2,Trinquet Victor3,Brunin Guillaume3,Wang Ke4,Robinson Robert2,Zu Rui1,Yoshida Suguru25,Lee Seng Huat25,Wang Yu25,Zhu Yanglin25,Rignanese Gian‐Marco36,Mao Zhiqiang25,Gopalan Venkatraman124

Affiliation:

1. Department of Materials Science and Engineering Pennsylvania State University University Park Pennsylvania 16802 USA

2. Department of Physics Pennsylvania State University University Park Pennsylvania 16802 USA

3. Institute of Condensed Matter and Nanosciences UCLouvain Louvain‐la‐Neuve Wallonia 1348 Belgium

4. Materials Research Institute The Pennsylvania State University University Park Pennsylvania 16802 USA

5. 2D Crystal Consortium Materials Research Institute Pennsylvania State University University Park Pennsylvania 16802 USA

6. School of Materials Science and Engineering Northwestern Polytechnical University No. 127 Youyi West Road Xi'an Shaanxi 710072 P. R. China

Abstract

AbstractSuperior infrared nonlinear optical (NLO) crystals are in urgent demand in the development of lasers and optical technologies for communications and computing. The critical challenge is to find a crystal with large non‐resonant phase‐matchable NLO coefficients and high laser damage threshold (LDTs) simultaneously, which however scale inversely. This work reports such a material, MgSiP2, that exhibits a large second harmonic generation (SHG) coefficient of d14d36 = 89 ± 5 pm V−1 at 1550 nm fundamental wavelength, surpassing the commercial NLO crystals AgGaS2, AgGaSe2, and ZnGeP2. First principles theory reveals the polarizability and geometric arrangement of the [SiP4] tetrahedral units as the origin of this large nonlinear response. Remarkably, it also exhibits a high LDT value of 684 GW cm−2, which is six times larger than ZnGeP2 and three times larger than CdSiP2. It has a wide transparency window of 0.53–10.35 µm, allowing broadband tunability. Further, it is Type I and Type II phase‐matchable with large effective SHG coefficients of deff,I ≈80.2 pm V−1 and deff,II ≈73.4 pm V−1. The outstanding properties of MgSiP2 make it a highly attractive candidate for optical frequency conversion in the infrared.

Funder

Air Force Office of Scientific Research

National Science Foundation

U.S. Department of Energy

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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