4.6 Article

Phase-Coherent Optical Frequency Up-Conversion with Millimeter-Size Zn(3-ptz)2 Metal-Organic Framework Single Crystals

Journal

ADVANCED OPTICAL MATERIALS
Volume 11, Issue 15, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adom.202300142

Keywords

critical phase matching; crystal growth; effective nonlinear coefficient; laser damage threshold; metal-organic framework crystals; second-harmonic generation; third-harmonic generation

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Metal-organic frameworks (MOFs) are promising nonlinear optical materials due to their enhanced stability, and the challenge of producing large single crystals with optimal phase matching conditions has been overcome. Millimeter-sized Zn(3-ptz)(2) uniaxial MOF crystals with high transparency and large birefringence have been synthesized. Strong second-harmonic and third-harmonic generation signals were observed for the first time using femtosecond near-infrared pump pulses. The experiments are in agreement with simulations and demonstrate the potential of MOF single crystals for nonlinear optical devices.
Metal-organic frameworks (MOFs) have emerged as candidate materials for nonlinear optics due to their enhanced optical and chemical stability in comparison with conventional organic crystals. However, producing large single crystals that support perfect phase matching conditions for frequency conversion is a long-standing challenge due to the highly metastable conditions in which MOF crystals tend to self-assemble in solution. By modulating the synthesis and growth conditions, this limitation is overcome to produce millimeter-sized Zn(3-ptz)(2) uniaxial MOF single crystals. Optimized MOF crystals with large birefringence in the visible & UDelta;n & AP; -0.3 and high transparency allow for the observation of strong second-harmonic (SHG) and third-harmonic generation (THG) signals for the first time, using femtosecond near-infrared pump pulses. For conditions of type-I SHG phase-matching, the measured effective nonlinear coefficient of Zn(3-ptz)(2) is d(eff) & AP; 0.10 pm V-1, the largest measured nonlinearity for MOF materials to date. The experiments quantitatively agree with first-principles simulations based on the crystal lattice structure. The damage threshold is estimated on the order of 0.2 TW cm(-2) for raw single crystals, which can be further increased with additional crystal engineering steps. The demonstration of efficient frequency up-conversion of light with long-range phase coherence establishes MOF single crystals as promising materials for nonlinear optical devices.

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