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Tin Oxide (SnO2) Evaporation Material, Powder, 99.9%, 30-60 nm
Product Type: Compound Evaporation Material
Research-grade laboratory product
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LABORATORY PROCUREMENT SUPPORT
For material selection, deposition-source matching, pack-size confirmation or quotation support, contact our technical sales team.
INQUIRY: inquiry@atomfair.com
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Manufacturer: Atomfair LLC
Brand: ATOMFAIR®
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This material requires an e-beam evaporation source with a graphite, Al2O3, or BN liner, or a W, Mo, or Ta boat for optimal performance. Thermal evaporation may be used by special request but requires configuration confirmation.
- Evaporation Method Constraint: E-beam evaporation is the preferred method; thermal evaporation requires a request for quotation and hardware validation.
- Liner and Boat Compatibility: Use a graphite, Al2O3, or BN liner, or a W, Mo, or Ta boat in the e-beam hearth for optimal performance.
- Procurement Verification: Confirm model, purity, form, size range, pack size, and deposition-source compatibility before placing an order.
How does the Z-ratio of 1.00 for this SnO2 powder simplify quartz crystal microbalance (QCM) thickness monitoring during e-beam evaporation?
A Z-ratio of 1.00 indicates minimal acoustic impedance mismatch between the deposited material and the quartz crystal, allowing direct tooling factor application without correction. This simplifies process setup for the 99.9% purity SnO2 powder (30-60 nm) when using e-beam evaporation, as stated in the product specifications.
What liner and boat materials are recommended for e-beam evaporation of this SnO2 powder to avoid contamination?
The product is compatible with e-beam hearth liners made of graphite, Al2O3, or BN, and boats made of W, Mo, or Ta. These materials are explicitly listed in the technical specifications for the 99.9% purity SnO2 powder to ensure process compatibility and minimize contamination during deposition.
What is the optimal evaporation method for achieving high-quality thin films from SnO2 powder with 30-60 nm particle size and 99.9% purity?
E-beam evaporation is the preferred method, with performance rated as Excellent for this SnO2 powder (30-60 nm, 99.9% purity). Thermal evaporation is also possible by RFQ. The recommendation is based on the material's defined melting point of 1630°C and density of 6.95 g/cm³, as provided in the product data.
This Tin Oxide (SnO2) evaporation material (99.9% purity, 30-60 nm powder) is optimized for E-beam deposition with excellent performance in compatible liners, though thermal evaporation requires RFQ and hardware matching must be verified.
Positive
- High purity and controlled particle size: 99.9% purity and 30-60 nm particle size ensure consistent evaporation behavior and film quality for laboratory thin-film deposition.
- Excellent E-beam evaporation compatibility: The material performs excellently in E-beam evaporation using graphite, Al2O3, or BN liners, or W/Mo/Ta boats, providing reliable deposition.
Trade-offs
- Thermal evaporation requires RFQ: Thermal evaporation is not the standard method and requires a request for quotation, which may introduce additional lead time and process validation steps.
- Hardware matching must be confirmed: Evaporation source hardware and process route must be matched to the material's melting point (1630°C) and density (6.95 g/cm³) to avoid incompatibility, as explicitly stated in the procurement checklist.
Every advanced material, component, equipment, and instrument in our catalog is backed by rigorous testing. We maintain strict internal quality management frameworks and align with CE conformity metrics to deliver transparent, reproducible performance data via our public open-science repository.
To request raw batch performance data, submit formal vendor registration paperwork, or execute a fast-turnaround R&D manufacturing loop, contact us at inquiry@atomfair.com.
Item is dispatched under the Atomfair Shipping & Delivery Framework (Free worldwide shipping on orders over $59 USD excl. heavy equipment). Return is governed by the Atomfair Return & Refund Policy (7-day technical return window).






