Waferpedia

Tokyo Electron

Precio Automatic Wafer

The Tel Precio Automatic Wafer Prober is an automatic wafer prober for 12-inch wafers. The Tel Precio Automatic Wafer Prober features a single FOUP wafer loader on the right side. The Tel Precio Automatic Wafer Prober is rated for 200 V, 30 A, 50/60 Hz and 2.9 kVA single-phase power.[1][2]

Precio Automatic Wafer — Inventory photo
Fig. 01Precio Automatic WaferInventory photo[1]

Wafer size

Single Foup Wafer Loader (Right)

Power

50/60 Hz[1]

What it is

General reference — not yet source-verified

The Tokyo Electron Precio Automatic Wafer Prober is an automatic wafer prober used for semiconductor test and probe handling.

Where it fits in the process flow

General reference — not yet source-verified

A wafer prober sits in the test flow after front-end wafer processing and before singulation, package assembly, and final device test.

The Precio model supports probe-level electrical access to wafer-level devices and therefore belongs in wafer test operations rather than in lithography or deposition steps.

Applications

The Tokyo Electron Precio Automatic Wafer Prober is used for wafer-level semiconductor test and probe characterization on twelve-inch wafers.[1][3][12][2]

What do the numbers mean?

Power & electrical4

50/60 Hz[1]
Accurate?
Rated Power Input
200 V[1]
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Frequency
50/60 Hz[1]
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Power Input
200 V[1]
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Wafer handling5

Single Foup Loader (Right)[1]
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Wafer size
Single Foup Wafer Loader (Right)[11]
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Wafer Size
12 inch[1]
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Loader Type
Single Foup Loader (Right)[1]
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Wafer loader
Single Foup Loader (Right)[1]
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Control & software4

GPIB Tester Interface[1]
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93000DD interface bolt not included[3]
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Interface Options
GPIB Tester Interface Options, Top Plate Unit, V93K PIB & Pogo Docking Type[1]
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Tester interface
GPIB[1]
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Configuration & options12

Rated Breaker Input
30 A[1]
Accurate?
Top Plate Unit, V93K PIB & Pogo Docking Type[1]
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Phase
1 Phase[2]
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Power
2.9 kVA[2]
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Breaker Rating
30 A[1]
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kVA Rating
2.9 kVA[2]
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Vintage Year
2015[1]
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Make
Tel[1]
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Model
Precio[1]
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Power rating
2.9 kVA[2]
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Available options
Top Plate Unit, V93K PIB & Pogo Docking Type[1]
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Vintage
2015[1]
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What replaced it?

Alternatives

Tools documented as functional equivalents — same process step and wafer size, from a different manufacturer. Each equivalence cites its source.

What does it need to run?

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

  • Configuration50/60 Hz[1]
  • Rated Power Input200 V[1]
  • Frequency50/60 Hz[1]
  • Power Input200 V[1]

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

How does an automatic wafer prober align the wafer without damaging the die?General reference — not yet source-verified

The prober uses optical pattern recognition systems to locate alignment marks on the wafer, then makes precise mechanical adjustments. The chuck moves slowly and gently to contact the probe needles with the pads, using controlled force to avoid damage.

Can the prober handle different wafer sizes?General reference — not yet source-verified

Many systems in this class are designed to accommodate a range of wafer sizes by changing the chuck and adjusting the alignment recipe. The exact sizes depend on the configuration, but the class generally supports multiple substrate diameters.

What determines the throughput of an automatic wafer prober?General reference — not yet source-verified

Throughput depends on the speed of wafer loading, alignment time, the number of dies, and the time spent per die for electrical testing. Optimization of the stepping sequence and parallel testing of multiple dies can increase throughput, but the class inherently has this trade-off between accuracy and speed.

Not publicly documented

The following facts about the Precio Automatic Wafer 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 Precio Automatic Wafer are on record.

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

  • No publicly documented variants, configuration options, or revision breakpoints of the Precio Automatic Wafer 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 Precio Automatic Wafer 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 Precio Automatic Wafer are on record.

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

  • The process node or technology generation of the Precio Automatic Wafer 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 (12)Every fact above is drawn from these public sources
  1. [1]Inventory photo
  2. [2]inventory listing
  3. [3]Inventory photo
  4. [4]Inventory photo
  5. [5]Inventory photo
  6. [6]Inventory photo
  7. [7]Inventory photo
  8. [8]Inventory photo
  9. [9]Inventory photo
  10. [10]Inventory photo
  11. [11]inventory listing
  12. [12]Equipment inventory listing
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Last updated Oct 1, 2026.

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