Perovskite materials combine a highly adaptable crystal framework with composition-dependent optical, electronic, ionic and catalytic properties. Eata Energy supplies perovskite-related materials for customers developing solar cells, light-emitting devices, detectors, electrochemical systems, functional ceramics and next-generation energy technologies. Our portfolio can cover halide perovskites, oxide perovskites, precursor salts, ready-to-process formulations and application-specific material formats.
Choosing the right perovskite starts with the intended device architecture and processing route. Composition, crystal phase, purity, particle size, solvent system, concentration and surface chemistry can all influence film formation, charge transport, ionic conductivity or catalytic activity.
Figure 1. Atomic-scale visualization of a three-dimensional perovskite lattice.
The term perovskite describes a structural family rather than a single substance. Many perovskites are represented by the general formula ABX₃, where the A and B sites are occupied by different cations and X is an anion. In photovoltaic and optoelectronic research, X is commonly a halide such as iodide, bromide or chloride. In oxide perovskites, oxygen occupies the X site, creating an extensive family of inorganic ceramics with tunable electrical, magnetic, dielectric and catalytic behavior.
This structural flexibility is the reason perovskite chemistry has expanded across several technology areas. Researchers can adjust A-site cations, B-site metals, halide ratios, dopants and dimensionality to tune bandgap, absorption range, emission color, carrier transport, phase stability, oxygen vacancy concentration and interfacial compatibility.
Eata Energy can support sourcing and specification development across the following material groups. Availability and format depend on the selected composition.
| Material Family | Typical Chemistry | Common Formats | Application Areas |
| Hybrid halide perovskites | MAPbI₃, FAPbI₃, mixed MA/FA/Cs and mixed I/Br/Cl systems | Precursors, powders, inks, crystals | Photovoltaics, photodetectors, LEDs, thin-film research |
| All-inorganic halide perovskites | CsPbBr₃, CsPbI₃, CsPbCl₃ and mixed-halide variants | Powders, crystals, nanocrystals, dispersions | Optoelectronics, emission studies, detectors, tandem absorbers |
| Layered and 2D perovskites | PEA-, BA- and related spacer-cation formulations | Precursors, powders, crystals, solutions | Interface engineering, LEDs, stability studies, low-dimensional physics |
| Lead-free and perovskite-inspired materials | Tin-based systems, Cs₂AgBiBr₆, Cs₃Bi₂I₉ and related compositions | Powders, crystals, precursor sets | Exploratory photovoltaics, detectors and optoelectronic research |
| Oxide perovskites | BaTiO₃, SrTiO₃, LaMnO₃, LaCoO₃, LSM, LSCF and doped oxides | Powders, granules, ceramic pellets, targets | Fuel cells, electrocatalysis, sensors, dielectric and ferroelectric devices |
| Perovskite nanomaterials | Halide nanocrystals, quantum dots and composition-tuned nanoparticles | Dispersions, powders, concentrates | LEDs, displays, lasers, photodetectors and spectroscopy |
Figure 2. Representative high-purity perovskite powder prepared for materials research.
A useful product format should match the customer's synthesis route, deposition method and characterization plan. Depending on composition, perovskite materials may be supplied in the following forms:
Figure 3. Conceptual multilayer perovskite thin-film architecture for optoelectronic devices.
Clear specifications reduce trial-and-error during material evaluation. The most useful purchasing information usually includes the target chemistry, required form and the process conditions in which the material will be used.
| Selection Parameter | Why It Matters | Information to Provide |
| Composition and stoichiometry | Controls phase formation, bandgap, transport properties and device compatibility. | Exact formula, cation ratio, halide ratio, dopant type and dopant level. |
| Purity and impurity limits | Trace metals, residual salts and water can affect crystallization and electrical behavior. | Target assay, metal basis, moisture limit and critical impurity thresholds. |
| Crystal phase | Some compositions form multiple polymorphs with different optical or ionic properties. | Required phase, XRD reference, crystallinity or phase-purity expectation. |
| Particle size and morphology | Influences sintering, dispersion stability, surface area and film texture. | Average particle size, distribution, surface area or preferred morphology. |
| Solvent and concentration | Determines wetting, drying behavior, nucleation and coating uniformity. | Solvent blend, molarity, viscosity range, filtration and additive preferences. |
| Surface chemistry | Ligands and passivating agents affect nanocrystal stability and interfacial charge transfer. | Ligand type, capping chemistry, surface treatment or additive restrictions. |
| Packaging and storage | Many halide perovskite precursors are moisture-sensitive and benefit from controlled handling. | Container size, atmosphere, light protection and preferred storage conditions. |
| Process compatibility | The same material can behave differently in spin coating, evaporation, printing or ceramic firing. | Deposition method, substrate, annealing range and device architecture. |
Figure 4. Perovskite precursor solutions formulated for controlled film deposition.
Metal-halide perovskites are widely studied as thin-film light absorbers because their composition can be adjusted to tune the optical bandgap. They are used in single-junction devices, all-perovskite tandems and perovskite-silicon tandem architectures. Product requirements may include controlled halide ratios, phase-stable formulations, low-water precursor salts and coating-ready inks.
Composition-tuned halide perovskites and perovskite nanocrystals can produce narrow, adjustable emission across the visible spectrum. Researchers use these materials to study electroluminescence, color purity, charge balance, interface passivation and scalable solution processing.
Perovskite crystals, films and nanomaterials are investigated for sensitive light detection and charge collection. Single-crystal quality, trap density, thickness, surface condition and electrode compatibility are especially important when selecting materials for detector prototypes.
Oxide perovskites can exhibit mixed ionic-electronic conduction, oxygen-vacancy transport and catalytic activity. Compositions such as manganites, ferrites, cobaltites and doped titanates are studied as electrodes, oxygen-reaction catalysts and functional ceramics in solid oxide fuel cells, electrolysis cells and related energy-conversion systems.
Barium titanate, strontium titanate and other oxide perovskites are established platforms for dielectric, ferroelectric and sensor research. Particle size, phase purity, dopant level and sintering behavior are important for ceramic processing and thin-film development.
The broad chemical design space of perovskites makes them useful for screening composition-property relationships. Researchers can vary A-site and B-site occupancy, introduce controlled vacancies or create multicomponent systems to study oxygen evolution, oxygen reduction, photocatalysis and other surface-driven processes.
Figure 5. Porous perovskite oxide microstructure for catalytic and electrochemical studies.
Application-focused selection: We help connect composition, format and process requirements so buyers can compare materials on parameters that matter to their experiments or production development.
Broad chemistry coverage: A single sourcing channel can support halide perovskites, oxide perovskites, precursors, nanomaterials and related functional materials.
Specification flexibility: Purity, stoichiometry, particle size, concentration, solvent system, dopant level and packaging can be discussed for project-specific needs.
Technical communication: Clear specification review helps reduce ambiguity around phase, composition, form and characterization expectations.
Scalable project support: Material requests can be structured for early screening, formulation optimization, pilot evaluation or repeat procurement.
Need a composition that is not shown in a standard product list? Eata Energy can evaluate custom perovskite synthesis, doped oxide formulations, mixed-cation or mixed-halide compositions, particle-size adjustment, precursor concentration, solvent selection and project-specific packaging. Share your target formula, desired form, purity, quantity and intended process so our team can prepare a tailored quotation.
| Catalog Number | Product Name | Order | Quantity |
|---|---|---|---|
| SEMP-0021 | DABCO Dihydrobromide Perovskite Precursor, ≥97% | Inquiry | |
| SEMP-0022 | Ethylenediamine Dihydrobromide (EDABr2), ≥97% | Inquiry | |
| SEMP-0023 | Ethylammonium Iodide (EAI), ≥98% | Inquiry | |
| SEMP-0024 | Formamidinium Bromide (FABr), ≥98%, Low-Water Grade | Inquiry | |
| SEMP-0025 | Formamidinium Iodide (FAI), >98% (T), Low-Water Grade | Inquiry | |
| SEMP-0026 | Guanidinium Bromide (GABr), >98% (T) | Inquiry | |
| SEMP-0027 | Guanidinium Iodide (GAI), >97% (T) | Inquiry | |
| SEMP-0028 | Imidazolium Iodide, ≥98% (T), Low-Water Grade | Inquiry | |
| SEMP-0029 | Perovskite Solar-Cell Hole-Transport and Precursor Materials | Inquiry | |
| SEMP-0030 | 2,3,4,5,6-Pentafluorobenzylphosphonic Acid | Inquiry |
For Research or Industrial Raw Materials, Not For Personal Medical Use!
|
There is no product in your cart. |