STS
The STS 310 is a plasma-enhanced chemical-vapor-deposition system. The STS 310 was used to deposit silicon dioxide. The STS 310 was used to deposit silicon nitride.[1]
The STS 310 is a deposition system designed for thin film growth in semiconductor and microelectromechanical systems fabrication. The tool belongs to a class of plasma-enhanced chemical vapor deposition equipment that operates at reduced temperatures compared to thermal CVD. The STS 310 is used to deposit dielectric films such as silicon dioxide and silicon nitride on silicon wafers.
The STS 310 deposits thin films using a plasma-enhanced chemical vapor deposition process. Precursor gases are introduced into a vacuum chamber and a radio-frequency plasma is ignited above the substrate. The plasma dissociates the precursor molecules into reactive radicals that adsorb onto the wafer surface and react to form a solid film. The substrate is typically heated to a controlled temperature to promote surface reactions and film densification without requiring the high temperatures of thermal CVD.
The STS 310 is positioned in the fabrication sequence after cleaning steps and before photolithography or etching. The deposited films serve as insulating layers, passivation coatings, or hard masks for subsequent processes. The tool is used in both front-end-of-line and back-end-of-line processing where low-temperature deposition of high-quality dielectrics is required.
The STS 310 is used to deposit dielectric thin films for MEMS devices, integrated circuits, and optoelectronic components. Common deposited materials include silicon dioxide, silicon nitride, and silicon oxynitride. The films provide electrical insulation, mechanical protection, and chemical barriers in multilayer device stacks.
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The following facts about the 310 are absent from this record as of this revision. First-hand knowledge or a citation closes a gap; every submission is reviewed before publication.
No publicly documented production dates or lifecycle milestones (introduction, end of production, EOL) for the 310 are on record.
Answerable by: OEM historical records or a trade-press announcement
No publicly documented variants, configuration options, or revision breakpoints of the 310 are on record.
Answerable by: an OEM product catalog or an engineer who ordered or specified the tool
The control-system platform and OS era of the 310 are not on record.
Answerable by: an engineer who operated it or OEM installation records
No publicly documented failure modes or field errata for the 310 are on record.
Answerable by: a field service engineer, process engineer, or maintenance technician
The process node or technology generation of the 310 is not on record.
Answerable by: an OEM datasheet or a fab qualification report
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Last updated Oct 11, 2026.
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