| Literature DB >> 34123042 |
Hongkun Liu1, Ying Wang1, Bingbing Zhang1, Zhihua Yang2, Shilie Pan2.
Abstract
The design of new beryllium-free deep-ultraviolet nonlinear optical materials is important but challenging. Here, we describe a new strategy to search for such materials based on rational selection of fundamental structural units. By combining asymmetric AlO3F tetrahedra and π-conjugated B3O6 rings, a new aluminum borate fluoride, CsAlB3O6F was obtained. It exhibits excellent linear and nonlinear optical properties including a high optical transmittance with a cut-off edge shorter than 190 nm, large second harmonic generation intensities (2.0× KH2PO4, KDP), and suitable birefringence for phase-matching under 200 nm. It also has good thermal stability and can be synthesized easily in an open system. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 34123042 PMCID: PMC8145444 DOI: 10.1039/c9sc04862f
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1(a) The structural evolution from KBe2BO3F2 to CsAlB3O6F. (b) The 2D [AlB3O6F]∞ layer of CABF. (c) Crystal structure of CABF.
Fig. 2(a) Thermal behaviour of CABF. (b) The diffuse reflectance spectrum of CABF. (c) PSHG measurements at 1064 nm. (d) Calculated type I phase-matching condition of CABF. Dashed lines: refractive-indices of fundamental light. Solid lines: refractive-indices of second-harmonic light. The λSH of CABF is estimated by satisfying n = n. The SHG-weighted electron density maps of the occupied (e) and unoccupied (f) states in the VE process.