Mg<sub>2</sub>In<sub>3</sub>Si<sub>2</sub>P<sub>7</sub>: A Quaternary Diamond-like Phosphide Infrared Nonlinear Optical Material Derived from ZnGeP<sub>2</sub>

Jindong Chen, Hongxiang Chen, Feng Xu, Liling Cao, Xiaotian Jiang, Shunda Yang, Yingshuang Sun, Xin Zhao, Chensheng Lin, Ning Ye

Journal of the American Chemical Society · 2021 · 114 citations · 58 references

Abstract

Balancing the second-harmonic generation (SHG) coefficient, band gap, and birefringence is a vital but addressable challenge for designing infrared nonlinear optical materials. By applying a "rigidity-flexibility coupling" strategy, a quaternary diamond-like phosphide, Mg<sub>2</sub>In<sub>3</sub>Si<sub>2</sub>P<sub>7</sub>, with wurtzite-type superstructure was successfully designed and synthesized. Remarkably, it achieved the rare coexistence of giant second-harmonic generation (2 × ZnGeP<sub>2</sub> and 7.1 × AgGaS<sub>2</sub>), suitable band gap (2.21 eV), moderate birefringence (0.107), and wide IR transparent range (0.56-16.4 μm). First-principles calculations revealed that the giant SHG response and large birefringence can be attributed to the synergy of arrangement-aligned [InP<sub>4</sub>] and [SiP<sub>4</sub>] tetrahedra. This work not only opens a new avenue for designing advanced infrared nonlinear optical materials but also may spur more explorations on quaternary diamond-like pnictides.

References

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