Waferpedia

KLA

2138

Metrology & InspectionKLA 2138 family
Research Quality: 60% complete

The KLA-2138 is an inline wafer inspection system from KLA-Tencor. The KLA-2138 uses an ultra-broadband illumination source combined with improved brightfield optics and Segmented Auto Threshold (SAT) technology. The KLA-2138 detects a wide range of yield-relevant defect types on all process layers at speeds required for high-volume wafer production.[1]

2138 — web.archive.org
Fig. 012138web.archive.org[1]

What it is

The KLA 2138 is a wafer inspection system.[1]

The KLA 2138 is a brightfield inline inspection tool for detecting yield-limiting defects on process wafers.[1]

How it works

The KLA 2138 uses image processing for defect detection.[1]

The KLA 2138 combines an ultra-broadband illumination source with brightfield optics and Segmented Auto Threshold technology.[1]

Applications

The KLA 2138 detects yield-relevant defect types on process layers.[1]

  • Inline inspection of process layers
  • Detection of yield-limiting defects
  • Defect inspection on wafers

What do the numbers mean?

Wafer handling2

Type
Wafer Inspection System[1]
Accurate?
Inspection type
Inline wafer inspection[1]
Accurate?

Optics & imaging4

Illumination source
Ultra-broadband (UBB) illumination source[1]
Accurate?
Optics
Significantly improved brightfield optics[1]
Accurate?
Illumination source
Ultra-broadband (UBB)[1]
Accurate?
Optics type
Brightfield optics, significantly improved[1]
Accurate?

Configuration & options6

Product name
KLA-2138[1]
Accurate?
Technology
Ultra-Broadband Technology[1]
Accurate?
Detection technology
Segmented Auto Threshold (SAT) technology[1]
Accurate?
Optional configuration
Integrated SMIF minienvironment[1]
Accurate?
Detection technology
Segmented Auto Threshold (SAT)[1]
Accurate?
Integration
Available with integrated SMIF minienvironment[1]
Accurate?
Interested in this tool?
Need help with this tool?Embed spec card

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.

Worked with this tool? Help preserve its knowledge →

Frequently asked questions

What types of defects can this class of machine detect?General reference — not yet source-verified

Machines in this class are designed to detect a broad range of defects including pattern defects, particles, scratches, cracks, film non-uniformities, and embedded foreign material. The detection capability depends on the illumination mode (brightfield vs. darkfield) and the optical resolution.

How does the inspection sensitivity compare between different optical modes?General reference — not yet source-verified

Brightfield mode is generally better for detecting subtle pattern deviations and film thickness variations, while darkfield mode offers higher sensitivity to small particles and edge irregularities. Many such systems allow switching between modes or using simultaneous illumination to capture a wider defect spectrum.

Can this machine be used for both front-end and back-end semiconductor processes?General reference — not yet source-verified

Yes, optical inspection tools of this class are typically used throughout the entire wafer fabrication flow, from front-end layers like gate and shallow trench isolation to back-end metallization and passivation layers. The optical setup may require adjustments for different film stacks and topography.

What are the typical throughput considerations for such systems?General reference — not yet source-verified

Throughput is a function of scan speed, pixel resolution, and number of inspection passes. Production systems balance sensitivity with throughput by adjusting stage acceleration, data acquisition rate, and algorithm complexity. Higher resolutions and multiple inspection passes reduce throughput but may be necessary for advanced defect detection.

How is the machine calibrated to ensure consistent defect detection?General reference — not yet source-verified

Calibration involves standard reference wafers with known defect sizes and types to tune the optical alignment, detector gain, and defect detection algorithm. Periodic recalibration using built-in test patterns and external standards ensures that sensitivity remains stable over time and across different machine recipes.

Not publicly documented

The following facts about the 2138 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 2138 are on record.

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

  • No publicly documented variants, configuration options, or revision breakpoints of the 2138 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 2138 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 2138 are on record.

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

  • The process node or technology generation of the 2138 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 (3)Every fact above is drawn from these public sources
  1. [1]web.archive.org — web.archive.orgweb.archive.org
  2. [2]KLA-Tencor Web Site --- The IC Manufacturing Process 7 — web.archive.orgweb.archive.org
  3. [3]KLA-Tencor Web Site --- The IC Manufacturing Process 3 — web.archive.orgweb.archive.org
Was this page accurate?

Last updated Oct 5, 2026.

Compare with similar tools

View all →