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JEOL

JBX-8100FS

JEOL JBX-8100FS family
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JEOL JBX-8100FS is a maskless lithograph ML2 type. The JBX-8100FS is based on a patented ZrO/W (Schottky) emitter.[1]

JEOLJBX-8100FS
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Power

125 MHz[2]

Optics

maskless lithograph ML2 type[1]

How it works

The JBX-8100FS employs a spot beam writing method with vector scan and step-and-repeat stage movement. The electron optical column forms a Gaussian beam that is deflected across the substrate. Dynamic focus and stigmation control are applied across scan fields to maintain beam shape and position.[2][5]

Applications

The JBX-8100FS is used for fabrication of advanced nanostructures, production of compound semiconductor devices, and applications such as holography, gray‑scale lithography, and micro‑lens arrays. The system supports both high-resolution and high-throughput exposure modes.[2][4]

What do the numbers mean?

Power & electrical2

Accelerating voltage
100 kV (G1); 100/50 kV (G2); 200/130/100/50 kV (G3)[2]
Accurate?
Maximum scanning speed
125 MHz[2]
Accurate?

Wafer handling1

Substrate size
Maximum 200 mm φ wafer, 6 inch mask blanks, and micro sample pieces of any size[2]
Accurate?

Optics & imaging9

machine type
maskless lithograph ML2 type[1]
Accurate?
Field size (high resolution mode)
100 μm × 100 μm[3]
Accurate?
Stage positioning resolution
0.6 nm (standard); 0.15 nm (optional)[2]
Accurate?
Overlay accuracy (high resolution mode)
≤±9 nm (G1/G2); ≤±8 nm (G3)[2]
Accurate?
Overlay accuracy (high throughput mode)
≤±20 nm[3]
Accurate?
Field stitching accuracy (high resolution mode)
≤±9 nm (G1/G2); ≤±8 nm (G3)[2]
Accurate?
Field stitching accuracy (high throughput mode)
≤±20 nm[3]
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Minimum line width
8 nm[4]
Accurate?
Minimum step size
0.5 nm[4]
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Performance1

Field size (high throughput mode)
1,000 μm × 1,000 μm (G1/G2); 2,000 μm × 2,000 μm (G3)[2]
Accurate?

Dimensions & facilities1

Footprint (W × D × H)
4.9 m × 3.7 m × 2.6 m[2]
Accurate?

Configuration & options7

emitter
patented ZrO/W (Schottky) emitter[1]
Accurate?
Emitter type
ZrO/W (Schottky) emitter[1]
Accurate?
Writing method
Spot beam, vector scan, step and repeat[2]
Accurate?
Beam current range
5 × 10⁻¹² to 2 × 10⁻⁷ A[2]
Accurate?
Stage movable area
190 mm × 170 mm[2]
Accurate?
Power consumption (normal operation)
Approximately 3 kVA[2]
Accurate?
Electron source
ZrO/W (Schottky) thermal field emitter[1]
Accurate?

Vintage & configurations

Documented models & variants

DesignationGenerationVintageChangesSource
G1——Entry model; optional accessories can be added as needed.jeol.com[2]
G2——Full option model.jeol.com[2]
G3——200 kV model.jeol.com[2]
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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.

  • Accelerating voltage100 kV (G1); 100/50 kV (G2); 200/130/100/50 kV (G3)[2]
  • Maximum scanning speed125 MHz[2]

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

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Frequently asked questions

What is the maximum acceleration voltage of the JBX-8100FS?

The maximum acceleration voltage is 200 kV, available on the G3 version.[2][4]

What is the minimum line width achievable with this system?

The minimum line width is 8 nm.[4]

What substrate sizes can the JBX-8100FS accommodate?

The system can handle substrates up to 200 mm wafers and 6‑inch mask blanks.[2]

What is the maximum scanning speed of the electron beam?

The maximum scanning speed is 125 MHz.[2][4]

Not publicly documented

The following facts about the JBX-8100FS 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 JBX-8100FS are on record.

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

  • The control-system platform and OS era of the JBX-8100FS 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 JBX-8100FS are on record.

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

  • The process node or technology generation of the JBX-8100FS is not on record.

    Answerable by: an OEM datasheet or a fab qualification report

  • No publicly documented compatible parts, consumables, or accessories for the JBX-8100FS are on record.

    Answerable by: an OEM parts catalog or a service engineer

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Sources & citations

Sources (6)Every fact above is drawn from these public sources
  1. [1]en.wikipedia.org — en.wikipedia.orgen.wikipedia.org
  2. [2]jeol.com — jeol.comjeol.com
  3. [3]jeolusa.com — jeolusa.comjeolusa.com
  4. [4]ncfl.ictas.vt.edu — ncfl.ictas.vt.eduncfl.ictas.vt.edu
  5. [5]E-Beam Lithography System - Advanced Nanofabrication Facility — nanofab.ubc.cananofab.ubc.ca
  6. [6]JBX-8100FS - JEOL (Germany) GmbH and Nordic (AB) — jeol.dejeol.de
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Last updated Sep 23, 2026.

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