Birefringent materials are fundamental for manufacturing key optical components such as polarizers and waveplates, which are indispensable in modern laser technology and optical communication systems. However, the high symmetry of the PO 4 tetrahedron fundamentally limits the optical anisotropy of traditional phosphate materials. Here, we employed a heteroleptic substitution strategy, coincorporating π-conjugated phenyl (−C 6 H 5 ) and hydroxyl (−OH) groups into the phosphates and obtained a series of alkali metal hydroxylated phenylphosphates, A(C 6 H 5 ) 2 P 2 O 3 (OH) 3 (A = Na, K, Rb, and Cs), which exhibits giant birefringence (Δn = 0.22–0.25 @ 1064 nm) with short ultraviolet cutoff edges. By analysis, the phenyl groups provide immense polarizability anisotropy, while hydrogen bonds enforce a nearly linear alignment of these functional motifs as a pulling force. The structural synergy generated an angle of 11° between the C–P bond and the principal optical axis of maximum refractive index, which significantly optimized the spatial parallel alignment of functional groups and led to a dramatic birefringence enhancement for phosphates. These exceptional properties establish them as highly promising candidates for short-wave ultraviolet birefringent material applications and especially the heteroleptic substitution strategy has demonstrated its worth as a referable design strategy.
Jiang et al. (Fri,) studied this question.