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The Achievement of a Strong Second Harmonic Generation Response and a Large Birefringence in Sulfates
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ABSTRACT
In the solar‐blind region, the development of short‐wave ultraviolet (UV) lasers relies critically on high‐performance nonlinear optical (NLO) crystals, which require a wide bandgap, a strong second harmonic generation (SHG) response, and a sufficient birefringence to fulfil phase‐matching requirements. Although sulfates possess a wide bandgap necessary for short‐wave UV applications, the inherent symmetry of [SO
4
]
2−
tetrahedron typically results in an insufficient birefringence. To optimize their birefringence, the introduction of
π
‐conjugated ligands was implemented with a good structural inducer of 4‐hydroxypyridine group. It is an effective strategy to markedly augment the birefringence of sulfates as demonstrated in (C
5
H
5
NO)
2
ZnSO
4
·H
2
O crystal with a birefringence of 0.48
@
546 nm. Then, based on it, a new UV NLO crystal, (C
5
H
5
NO)ZnSO
4
·3H
2
O, was obtained by modulating the coordination mode of zinc atoms to mitigate the steric hindrance and increase hydrogen bond sites. It achieves the collaborative optimization of SHG response (1.5 × KH
2
PO
4
(± 0.1)) and optical anisotropy (birefringence ∼ 0.27
@
546 nm), originating from the synergetic contribution of 4‐hydroxypyridine ligands and [SO
4
]
2−
groups. Therefore, this study establishes an innovative strategy for the structural design and performance optimization in NLO materials.
Title: The Achievement of a Strong Second Harmonic Generation Response and a Large Birefringence in Sulfates
Description:
ABSTRACT
In the solar‐blind region, the development of short‐wave ultraviolet (UV) lasers relies critically on high‐performance nonlinear optical (NLO) crystals, which require a wide bandgap, a strong second harmonic generation (SHG) response, and a sufficient birefringence to fulfil phase‐matching requirements.
Although sulfates possess a wide bandgap necessary for short‐wave UV applications, the inherent symmetry of [SO
4
]
2−
tetrahedron typically results in an insufficient birefringence.
To optimize their birefringence, the introduction of
π
‐conjugated ligands was implemented with a good structural inducer of 4‐hydroxypyridine group.
It is an effective strategy to markedly augment the birefringence of sulfates as demonstrated in (C
5
H
5
NO)
2
ZnSO
4
·H
2
O crystal with a birefringence of 0.
48
@
546 nm.
Then, based on it, a new UV NLO crystal, (C
5
H
5
NO)ZnSO
4
·3H
2
O, was obtained by modulating the coordination mode of zinc atoms to mitigate the steric hindrance and increase hydrogen bond sites.
It achieves the collaborative optimization of SHG response (1.
5 × KH
2
PO
4
(± 0.
1)) and optical anisotropy (birefringence ∼ 0.
27
@
546 nm), originating from the synergetic contribution of 4‐hydroxypyridine ligands and [SO
4
]
2−
groups.
Therefore, this study establishes an innovative strategy for the structural design and performance optimization in NLO materials.
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