Waferpedia

Comparison ledger

5500versusCleanTrack ACT 8

ASML 5500, Tokyo Electron CleanTrack ACT 8, side by side. Every value shown is drawn from the cited encyclopedia entries.

Side-by-side comparison of selected equipment models
Attribute
5500ASML
CleanTrack ACT 8Tokyo Electron
OEMASMLTokyo Electron
CategoryLithographyLithography
Wafer size100mm100mm
Process node248 nm (KrF) DUVDUV lithography
Introduced——
Production run1991–—
Lifecycle——
Lifecycle milestones——
Control system——
Generation——
FamilyASML 5500Tokyo Electron CleanTrack ACT 8
Cited variants
  • PAS 5500/300[1]
  • PAS 5500/200i-line[2]
  • PAS 5500/60i-line[3]
  • PAS 5500/275i-line[4]
—
Specifications
ManufacturerASML[1]—
ModelPAS 5500/300[1]—
DescriptionDeep-UV Stepper Photolithography[1]—
Exposure wavelength248 nm (KrF)[1]—
Configured wafer size4 in wafers[1]100 mm (4") wafers[5]
Maximum wafer size4 in (100 mm) wafers with SEMI standard wafer flat (not notch)[1]—
Layer-to-layer overlay accuracybetter than 30 nm[1]—
Minimum feature size≤150 nm isolated lines; ≤200 nm dense patterns[1]—
Full-field useable exposure areaintersection of a 31 mm diameter circle and a 22 mm x 27 mm rectangle[1]—
Sample size100 mm wafers with SEMI std. major flat[1]—
Alignment accuracy< 50 nm[1]—
Wafer thicknessminimum approximately 200 µm; maximum approximately 1.1 mm[1]—
Maximum dose~100 mJ[1]—
Minimum Feature Size (dense)≤200 nm[1]—
Minimum Feature Size (isolated lines)≤150 nm[1]—
Overlay AccuracyBetter than 30 nm[1]—
Maximum Field Size (usable exposure area)22 mm x 27 mm rectangle within a 31 mm diameter circle[1]—
Wafer Size (standard)4 inch (100 mm)[1]—
ThroughputTypically minutes per wafer (multiple 4-inch wafers)[1]—
Reduction Ratio5x (for some variants, e.g., /200 and /60)[2]—
Numerical Aperture (variable)0.48-0.60 (for /200 variant)[2]—
Alignment Accuracy< 50 nm (for /300 variant)[1]—
Resolution (PAS 5500/300)≤150 nm isolated lines, ≤200 nm dense patterns[1]—
Exposure wavelength (PAS 5500/60)365 nm[3]—
Reduction ratio (PAS 5500/60)5:1[3]—
Wafer size (PAS 5500/300)100 mm (4 inch) wafers with SEMI standard flat[1]—
Overlay accuracy (PAS 5500/300)better than 30 nm[1]—
Resolution (PAS 5500/200)350 nm[2]—
Numerical aperture (PAS 5500/200)0.48-0.60 variable[2]—
Maximum field size (PAS 5500/200)22x22 mm[2]—
Minimum feature size (PAS 5500/60)450 nm[3]—
Equipment type—Industry-standard wafer coater and developer[5]
Lithography mode—DUV lithography[5]
Exposure interface—In-line exposure unit interface[5]
Throughput / footprint—High throughput in a small footprint[5]
Cluster configuration—Coater and developer track in-line with an ASML PAS5500/350C stepper[5]
Convertible wafer size—150 mm (6") wafers[5]
Process materials—KrF photoresist and ancillary anti-reflective coatings[5]
Track blocks—Carrier Station Block (CSB), Process Block (PRB), Interface Block (IFB)[5]
Wafer size—100 mm (4 inch) standard, convertible to 150 mm (6 inch) on demand[5]
Lithography type—DUV (KrF)[5]
In-line stepper interface—ASML PAS5500/350C[5]
Cassette ports—Four (two for 100 mm, two for 150 mm)[5]
Resist pump lines—4 for photoresist (COT), 2 for BARC (BCT)[5]
Developer lines—2 pressure-driven lines[5]
BARC materials supported—DS-K101 (Brewer Science), DUV-42P[5]
Photoresists supported—M108Y (JSR Corporation, 0.18 μm), M35G (0.25 μm)[5]
Developer used—TMA238WA[5]
Solvent used—Microposit EC Solvent (Dupont)[5]
Temperature/humidity control—Internal laminar flow with regulated temperature, humidity, and cup temperature/humidity controller (T&H)[5]
Water Flow—Left to Right[6]
Software Version—1.18.003[7]
CIM—SECS[7]
Handler System—CRA, PRA (2)[7]
Factory Interface—SMIF (3)[7]
Coater/Developer—Wafer coater and developer[5]
Configuration—In-line with ASML PAS5500/350C stepper forming a DUV lithography cluster[5]
Wafer Size (Configured)—100 mm (4")[5]
Wafer Size (Conversion Possible)—150 mm (6") - rare and on-demand[5]
Main Blocks—Carrier Station Block (CSB), Process Block (PRB), Interface Block (IFB)[5]
Spinning Units—Bottom-layer Coater (BCT), Coater (COT), Developer (DEV)[5]
Thermal Plates—Low-temperature Hot Plate, High-temperature Hot Plate, High-speed Chill Plate, ADHesion plates, Precision Hot Plates, Transition Station, Transition Chill Plate[5]
Interface Buffer—25-slot buffer[5]
Photoresist—KrF photoresist (M108Y, M35G)[5]
BARC—DS-K101 and DUV-42P[5]
Developer—TMA238WA[5]
External Modules—AC Power Box, Chemical Cabinet, Temperature and Humidity Controller, Thermostatic Water Supply[5]
In-line exposure unit—ASML PAS5500/350C[5]
Wafer capacity (cassette ports)—4[5]
BARC types—DS-K101 (Brewer Science) and DUV42P[5]
Photoresist types—M108Y (JSR Corporation) and M35G[5]
Exposure unit interface—in-line exposure unit interface[5]
Chemical filters—ULPA chemical filters[5]
Ovens—high-precision ovens[5]
Conversion wafer size—150 mm (6") wafers[5]
Photoresist chemistry—KrF photoresist[5]
Ancillary coating—AntiReflective Coatings[5]

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Sources (7)Every fact above is drawn from these public sources
  1. [1]wiki.nanotech.ucsb.eduwiki.nanotech.ucsb.edu
  2. [2]manualslib.commanualslib.com
  3. [3]snfguide.stanford.edusnfguide.stanford.edu
  4. [4]asml.comasml.com
  5. [5]epfl.chepfl.ch
  6. [6]inventory listing
  7. [7]inventory listing