AI Article Synopsis

  • Some special crystals called thiophosphates are important for electronics but have not been studied much before.*
  • Researchers created three new types of these crystals (α-RbInPS, β-RbInPS, and CsInPS) that show a lot of difference in how light travels through them.*
  • This difference in light behavior, called birefringence, is higher than in regular materials, thanks to how the bonds in the crystals are arranged and the addition of some metals.*

Article Abstract

Infrared birefringent crystals that hold significant importance for optoelectronic application have been rarely reported. Traditional tetrahedral PS, ethane-like PS, and octahedral InS units in thiophosphates typically manifest near isotropy, often resulting in extremely small birefringence. However, this study prepares α-RbInPS (1), β-RbInPS (2), and CsInPS (3), consisting of the aforementioned microstructures, notably exhibiting the highest refractive index difference or birefringence values (0.247, 0.298, and 0.250 at 546 nm, respectively) among thiophosphates, the middle one being larger than that of commercial birefringent materials. This unusual increase in birefringence can be primarily attributed to two key factors: (1) simultaneous stretching and compressing of the P-S and In-S covalent bond interactions, generating high polarizability anisotropy of InS, PS, and PS polyhedral units; (2) the additional incorporation of alkali metals that further reduces the dimensionality of the crystal structure, creating one-dimensional [InPS] structures with increasing polarizability anisotropy. This study presents an alternative approach to enhance birefringent materials by reconstructing covalent bond interactions and specific spatial arrangements.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11440415PMC
http://dx.doi.org/10.1039/d4sc03683bDOI Listing

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