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Oxford Instruments

Plasmalab 133

DepositionOxford Instruments Plasmalab family
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Provisional entry — research in progress

This page was generated automatically from cited public sources and hasn't completed the full research pass yet. Every specification shown carries its source; more detail is added as research completes.

Plasmalab 133 — Inventory photo
Fig. 01Plasmalab 133Inventory photo[1]

Power

50 Hz[3]

Gas delivery

8-line manifold with 7 MFCs[5]

What it is

The Oxford Instruments Plasmalab 133 is a deposition system in the Plasmalab family.[3]

How it works

General reference — not yet source-verified

A plasma deposition tool uses an energized gas discharge to drive chemical reactions that form thin films on a substrate surface.

A PECVD system typically combines process gases, low-pressure plasma, and controlled chamber conditions to deposit material at relatively low substrate temperatures.

Where it fits in the process flow

General reference — not yet source-verified

Deposition tools in this class are used after substrate preparation and before later patterning or integration steps.

PECVD equipment is commonly used to place functional thin films into a process flow for insulation, passivation, or masking roles.

Applications

General reference — not yet source-verified

Plasma deposition equipment is used for thin-film formation in semiconductor and microfabrication work.

What do the numbers mean?

Power & electrical5

Frequency
50 Hz[3]
Accurate?
Voltage
415 Vac 3[1]
Accurate?
Voltage
415 Vac[3]
Accurate?
RF power
600 W, 13.56 MHz[5]2 sources
Accurate?
Power
50 Hz[3]
Accurate?

Wafer handling2

Wafer size
8"[4]2 sources
Accurate?
Maximum wafer size
300 mm (330 mm chuck)[5]
Accurate?

Gas & chemistry2

Process type
PECVD (Plasma-Enhanced Chemical Vapor Deposition)[3]
Accurate?
Gas delivery
8-line manifold with 7 MFCs[5]2 sources
Accurate?

Optics & imaging1

Endpoint detection
Verity Optical Emission Spectroscopy (OES), 200–800 nm[5]2 sources
Accurate?

Control & software1

Electrode temperature control
10 °C – 80 °C (water-cooled)[5]2 sources
Accurate?

Configuration & options3

Category
Deposition[3]
Accurate?
Vintage
2010[1]
Accurate?
Process type
Reactive ion etcher (RIE)[5]
Accurate?
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What does it need to run?

Site utility requirements, footprint, and infrastructure needed to install and operate this tool. Sourced from public records.

  • Frequency50 Hz[3]
  • Voltage415 Vac 3[1]
  • Process typePECVD (Plasma-Enhanced Chemical Vapor Deposition)[3]
  • Voltage415 Vac[3]
  • RF power600 W, 13.56 MHz[5]
  • Gas delivery8-line manifold with 7 MFCs[5]
  • Power50 Hz[3]

Where are the manuals?

Generated from public-source data on file. Enter your email to access — nothing is published; details are routed privately.

Not publicly documented

Field notes

No research found yet — worked with this tool? Share what you know.

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Frequently asked questions

What are the typical substrate size and compatibility?General reference — not yet source-verified

Deposition tools of this class are designed to handle standard wafer sizes and can also accommodate non-circular substrates, such as glass or ceramic pieces, with appropriate fixturing.

How does the deposition rate compare to other methods?General reference — not yet source-verified

The deposition rate in plasma-enhanced processes is generally moderate, optimized for uniform film growth rather than high throughput; it can be adjusted by changing process parameters like power and gas flow.

What are the common maintenance requirements for these systems?General reference — not yet source-verified

Routine maintenance includes cleaning the chamber interior to remove deposits, replacing consumable parts like showerheads or electrodes, and calibrating gas flow and vacuum systems to ensure consistent performance.

Not publicly documented

The following facts about the Plasmalab 133 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 Plasmalab 133 are on record.

    Answerable by: OEM historical records or a trade-press announcement

  • No publicly documented variants, configuration options, or revision breakpoints of the Plasmalab 133 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 Plasmalab 133 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 Plasmalab 133 are on record.

    Answerable by: a field service engineer, process engineer, or maintenance technician

  • The process node or technology generation of the Plasmalab 133 is not on record.

    Answerable by: an OEM datasheet or a fab qualification report

No research found yet — worked with this tool? Share what you know.

Sources & citations

Sources (5)Every fact above is drawn from these public sources
  1. [1]Inventory photo
  2. [2]Inventory photo
  3. [3]waferpedia.com — waferpedia.comwaferpedia.com
  4. [4]asseta.comasseta.com
  5. [5]instrumenthive.cominstrumenthive.com
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Last updated Oct 7, 2026.

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