
Polysilazane
Polysilazane (PSZ) is a class of organic-inorganic hybrid polymers featuring a backbone of alternating silicon-nitrogen (–Si–N–) bonds. Often referred to as "liquid ceramics," they serve as crucial precursor materials in the field of polymer-derived ceramics (PDCs).
Structurally, polysilazanes feature alternating silicon and nitrogen atoms in the backbone, creating a chain-like structure similar to that of polysiloxanes. However, because silicon-nitrogen bonds are significantly more reactive than silicon-oxygen bonds, polysilazanes generally exhibit higher reactivity, ceramic-forming capability, and moisture sensitivity.
Based on their side groups, polysilazanes are categorized into two main types: perhydropolysilazane (PHPS) and organopolysilazane (OPSZ).
In perhydropolysilazane (PHPS), the silicon atoms are bonded primarily to hydrogen atoms rather than carbon; the repeating unit is represented as [–H₂Si–NH–]ₙ.
Upon high-temperature pyrolysis, these materials readily yield high-purity silicon nitride (Si₃N₄), making them ideal for producing silicon nitride ceramics, insulating films, and high-performance protective coatings. However, due to the high reactivity of Si–H and N–H bonds, PHPS is highly sensitive to moisture and prone to hydrolysis and cross-linking; consequently, it typically requires storage and processing under anhydrous and oxygen-free conditions.
Organopolysilazanes (OPSZ) feature methyl, phenyl, or other organic groups attached to the silicon atoms, resulting in significantly greater stability than PHPS.
Their pyrolysis products typically consist of silicon-carbon-nitrogen (SiCN), silicon-oxygen-carbon-nitrogen (SiCNO), or complex ceramic systems containing a silicon dioxide phase. Combining the processability of organic resins with the heat, wear, and corrosion resistance of inorganic ceramics, organopolysilazanes can be applied as films via brushing, spraying, dipping, or spin-coating. As a result, they are widely used in industrial coatings, semiconductor insulation, MEMS packaging, ceramic matrix composites, and new energy devices.
The core advantage of polysilazane lies in its "ceramic-forming capability."
At room temperature or lower, it can form a dense film through moisture-induced curing and cross-linking reactions; during high-temperature heat treatment, organic groups decompose and are released, while the backbone gradually transforms into silicon nitride, silicon carbide, silicon dioxide, or complex inorganic ceramic phases. This characteristic—the ability to transform from a polymer material into an inorganic ceramic—makes polysilazane particularly suitable for producing complex-shaped ceramic components, ceramic fibers, porous ceramics, and ultrathin ceramic protective coatings.
In practical applications, polysilazane is frequently used for high-temperature anti-corrosion coatings, wear-resistant insulating layers, metal surface passivation layers, and protective coatings for glass and ceramics, as well as for thermal protection and environmental barrier materials in the aerospace, energy, and electronics sectors.
Compared to polysiloxanes, polysilazanes exhibit superior ceramic-forming capabilities but are more sensitive to moisture and oxygen; compared to polycarbosilanes, polysilazanes tend to yield silicon nitride or silicon-carbon-nitrogen systems, whereas polycarbosilanes serve primarily as precursors for silicon carbide ceramics.
Overall, polysilazane is a key material bridging polymer processing and inorganic ceramic performance; it plays an irreplaceable role, particularly in the production of thin films and composite materials requiring high hardness, heat resistance, insulation, low gas permeability, and corrosion resistance.
Organopolysilazanes/ Polysilazane chinese manufacturer/producer/factory/ nanjing sanfan chemical co.,ltd.