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Phase Matchability Transformation in the Infrared Nonlinear Optical Materials with Diamond‐Like Frameworks

Man‐Man Chen, Shenghua Zhou, Wenbo Wei, Xintao Wu, Hua Lin, Qi‐Long Zhu

2021Advanced Optical Materials59 citationsDOI

Abstract

Abstract Phase matchability is a prerequisite for infrared nonlinear optical (IR‐NLO) crystals. Hitherto, it is relatively infrequent to design and synthesize phase‐matching (PM) materials from known non‐phase‐matching (NPM) materials. This work reports a series of PM chalcogenides AM II 3 Ga 5 S 11 (A = K, Rb, Cs; M II = Cd, Mn) with diamond‐like frameworks (DLFs), which are derived from the known NPM AM II 4 Ga 5 S 12 in the A 2 S−M II S−Ga 2 S 3 pseudoternary diagram. Notably, ACd 3 Ga 5 S 11 and AMn 3 Ga 5 S 11 are isomeric and exhibit different DLFs and remarkable overall properties. Especially, KCd 3 Ga 5 S 11 achieves the coexistence of wide band gap ( E g = 3.25 eV), strong second‐harmonic‐generation (SHG) response (1.7 × benchmark AgGaS 2 ) and ultrahigh laser‐induced damage threshold (36.5 × benchmark AgGaS 2 ), which is the best IR‐NLO chalcogenides with DLF known to date. Theoretical calculations reveal that their superior performance and PM behavior are benefited from the anisotropic structural characteristics, i.e., DLFs. This work demonstrates the feasibility of designing PM IR‐NLO materials via the partial removal of asymmetric building blocks in DLF structures of NPM materials that is accessible and controllable by chemistry means.

Topics & Concepts

Materials scienceInfraredNonlinear opticalDiamondAnisotropyPhase (matter)Benchmark (surveying)Band gapPhase diagramSecond-harmonic generationWork (physics)Nonlinear opticsOptoelectronicsNonlinear systemOpticsLaserThermodynamicsPhysicsComposite materialQuantum mechanicsGeographyGeodesyCrystal Structures and PropertiesSolid-state spectroscopy and crystallographyHigh-pressure geophysics and materials
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