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Fluorescent Silsesquioxane Sensors for Fluoride and PAHs

In an era where environmental monitoring and the rapid detection of industrial pollutants have become matters of pressing public concern, the development of advanced chemical sensors occupies a central position in contemporary materials science. A study published in Organometallics by Siripanich et al. (2022) reports a significant contribution to this field: a new class of dual-response fluorescent sensors constructed from pyrene-functionalized silsesquioxane (SQ) cages capable of selectively detecting both fluoride ions and polycyclic aromatic hydrocarbons (PAHs) with high analytical sensitivity and a rapid optical response, representing a notable advance in the design of multifunctional chemosensors.

Triflic Acid Rearrangement of T8 into T10 Amino POSS Salts

Triflic Acid Rearrangement of T8 into T10 Amino POSS Salts
The publication titled “Novel organic–inorganic hybrids based on T 8 and T 10 silsesquioxanes: synthesis, cage-rearrangement and properties,” published in RSC Advances in 2015, presents a controlled route to amino- and amido-functionalized cage silsesquioxanes together with a detailed account of T 10 silsesquioxane cage rearrangement promoted by trifluoromethanesulfonic acid. Treatment of the octameric hydrochloride salt with twelve equivalents of this Brønsted superacid in dimethyl sulfoxide delivered the decameric triflate in 44% yield, and the species formed along the reaction path were isolated and identified. The two long-chain amido derivatives obtained from these salts decompose at 471 and 451 °C and form optically transparent films whose water contact angles reach 104° and 110°. For a general introduction to decameric cages, their D 5h geometry, and isolation methods, see T10 Decameric Silsesquioxanes: Structure, Symmetry, and Isolation .

Amide POSS in 95% Yield from OAS Salts and Acyl Chlorides

Amide POSS in 95% Yield from OAS Salts and Acyl Chlorides
Amide-POSS acyl chloride synthesis, developed by Mateusz Janeta and SÅ‚awomir Szafert at the University of WrocÅ‚aw and reported in Chemistry – A European Journal in 2014, achieves homoocta-substituted amido-functionalized polyhedral oligomeric silsesquioxane (POSS) in isolated yields of approximately 95%, substantially exceeding the ca. 60% ceiling typically attainable by conventional carboxylic acid or anhydride routes. The strategy relies on crystalline ionic octa(3-aminopropyl)silsesquioxane (OAS-POSS) salts as scaffold precursors, reacted with aryl and alkyl acyl chlorides under mild conditions in the presence of triethylamine. The resulting amide-POSS compounds spontaneously self-organize into discrete spherical nanoparticles approximately 5 nm in diameter, as confirmed by transmission electron microscopy. The role of the base and the stability of the cage under hydrous conditions are discussed separately in Amido Functionalized POSS: Cage Stability and Base Selection .

Imine-POSS Crystal Structures and 3D Supramolecular Networks

Imine-POSS Crystal Structures and 3D Supramolecular Networks
Imine-POSS nanobuilding blocks for supramolecular hybrid materials, synthesized and structurally characterized by Janeta et al. at the University of WrocÅ‚aw and published in Dalton Transactions in 2016, constitute the first complete series of fully octa-imino-functionalized polyhedral oligomeric silsesquioxane (POSS) compounds, with five single-crystal X-ray diffraction structures reported for the first time. The five compounds bearing phenyl, 4-bromophenyl, 4-nitrophenyl, 2-hydroxyphenyl, and 2-naphthyl groups form three-dimensional supramolecular networks governed by halogen bonds, CH⋅⋅⋅N contacts, and intramolecular hydrogen bonds. The 4-nitrophenyl derivative assembles a porous framework whose guest-accessible channels occupy approximately 20% of the unit cell volume, extending the structural diversity first established for the octa-imine POSS derivatives POSS-6 through POSS-9 .

Octavinyloctasilsesquioxane: Synthesis and Derivatives

Octavinyloctasilsesquioxane: Synthesis and Derivatives
Octavinyloctasilsesquioxane is among the most versatile and widely studied polyhedral oligomeric silsesquioxane (POSS) platforms in hybrid materials chemistry. Its eight peripheral vinyl groups, arranged symmetrically about the cubic silsesquioxane core, consistent with the T8 cage classification , provide an exceptionally rich surface for chemical functionalization through reactions characteristic of terminal alkenes, enabling the rational synthesis of dendrimers, polymer networks, glycoclusters, and metal-coordinating ligands.

Electronic Properties of Octameric Silsesquioxanes

Electronic Properties of Octameric Silsesquioxanes
HOMO-LUMO Gap and Insulating Character of the Silsesquioxane Core Quantum-mechanical calculations performed for octahydrooctasilsesquioxane showed that the highest occupied molecular orbital (HOMO) of this compound is composed of atomic orbitals associated with the lone pairs of the oxygen atoms, whereas the lowest unoccupied molecular orbital (LUMO) is spherical and is located at the center of the silsesquioxane core, as shown in the figure below. The calculations further indicated that the energy gap between the HOMO and the LUMO amounts to approximately 6 to 7 eV. This value exceeds the 3 eV threshold for conductivity, which confirms that the silsesquioxane core behaves as an insulator.

T10 Decameric Silsesquioxanes: Structure and Isolation

T10 Decameric Silsesquioxanes: Structure and Isolation
Decameric silsesquioxanes of the T 10 cage type (general formula [RSiO 3/2 ] 10 ) represent a structurally distinct class of polyhedral oligomeric silsesquioxanes (POSS) . Unlike the more common cubic T 8 cages possessing O h symmetry, T 10 silsesquioxanes adopt a prismatic cage geometry with idealized D 5h symmetry, in which ten silicon atoms are arranged in two parallel pentagonal rings connected by five bridging Si–O–Si linkages, consistent with the T10 cage nomenclature conventions used throughout this series. Despite their interesting geometry and properties, T 10 silsesquioxanes are considerably less studied than their T 8 counterparts, primarily due to the challenges associated with their isolation in pure form. Topics covered in this post:  formation of T 10 POSS as a by-product of T 8 synthesis; cage reorganization pathways (nucleophilic substitution, fluoride-catalyzed, base-catalyzed, and superacid-mediated routes); separation and purification methods; crys...

Octa(3-aminopropyl)silsesquioxane (OAS-POSS) Synthesis

Octa(3-aminopropyl)silsesquioxane (OAS-POSS) Synthesis
Wacker-Chemie Patent Origins and the Absence of Early Characterization Data Octa(3-aminopropyl)silsesquioxane salts constitute the practical entry point to polyhedral oligomeric silsesquioxanes (POSS) bearing nitrogen in the organic arms. A one step hydrolytic condensation of (3-aminopropyl)triethoxysilane that affords the chloride, trifluoroacetate and triflate salts in high yield, together with their subsequent conversion into amide derivatives by means of acyl chlorides, has established these compounds as readily accessible building blocks. 1 The history of the parent compound is nevertheless considerably longer. Octa(3-aminopropyl)silsesquioxane hydrochloride (OAS) was first described in a patent filed by Wacker-Chemie GmbH, 2 although that document reports neither a method for its preparation nor the spectroscopic data required for its full identification. 3

Octameric POSS Synthesis by Hydrolytic Condensation

Octameric POSS Synthesis by Hydrolytic Condensation
Hydrolytic condensation of organotrichlorosilanes remains the workhorse preparation of octameric polyhedral oligomeric silsesquioxanes (POSS). This entry treats that single route in detail, covering the hydrolysis and condensation sequence, the steric control that favors the T 8 cage, and the practical influence of solvent, acidity and reaction time. A comparison of this route with the two remaining synthetic strategies is given on the dedicated overview page linked below. This entry is a focused companion to the main reference page Synthetic Routes to Octameric POSS , which surveys all three principal categories of cage synthesis, including corner capping of incompletely condensed precursors and post synthetic modification of preformed cages. Figure 1. Hydrolysis of an organotrifunctional silane and subsequent polycondensation of the resulting silanols to the octameric T 8 framework.

Structures of Oligomeric Silsesquioxanes (POSS)

Structures of Oligomeric Silsesquioxanes (POSS)
Polyhedral Silsesquioxanes Research on compounds containing the Si–O bond has long been dominated by silicon dioxide, by minerals built from repeating SiO₂ units, and by silicones composed of repeating R₂SiO units (R = alkyl or phenyl). Over the past 20 to 30 years, however, interest in silsesquioxanes based on the RSiO₁.₅ unit has increased markedly.