Waferpedia

Comparison ledger

5500versusEVG 150

ASML 5500, EV Group EVG 150, side by side. Every value shown is drawn from the cited encyclopedia entries.

Side-by-side comparison of selected equipment models
Attribute
5500ASML
EVG 150EV Group
OEMASMLEV Group
CategoryLithographyLithography
Wafer size100mm100mm
Process node248 nm (KrF) DUV—
Introduced——
Production run1991–—
Lifecycle——
Lifecycle milestones——
Control system——
Generation—i-line
FamilyASML 5500EV Group EVG 150
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]—
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]—
Tool type—Modular cluster tool for coating and development of i-line photoresists[5]
Loading/unloading ports—Two loading/unloading ports: one cassette for coating and one cassette for development[5]
Wafer centering—Optical wafer centering station[5]
Spin-coating modules—Three spin-coating modules: coater A, coater B, and coater C[5]
Coater A use—Low-viscosity photoresist[5]
Coater B use—High-viscosity photoresist[5]
Coater C use—Bottom layers[5]
Development module—One development module with puddle and spray options[5]
Hotplates and coolplates—Three stacks of hotplates (8 in total) and coolplates (3 in total)[5]
HMDS priming—Additional HMDS-priming module[5]
Robot—Dual end effector robot[5]
Wafer handling—Standard SEMI-wafers of 100 mm and 150 mm diameter[5]
Substrate types—Opaque wafers (silicon, SOI) or transparent wafers (glass, fused-silica, sapphire)[5]
Process stability features—Airborne molecular contamination (AMC) filter and active control of chamber and resist/developer lines temperature[5]
Available photoresists—AZ ECI 3007, AZ ECI 3027, AZ 1512 HS, AZ nLOF 2020, AZ nLOF 2070, MC PC62E[5]
Available bottom layers—LOR 5A, LOR 15C, XHRiC-16 II[5]
Surface preparation options—HMDS, dehydrate, or none[5]
Solvent clean options—Standard or edge bead removal (EBR)[5]
Developer chemistries—AZ 726 MIF, AZ 400K 1:3.5, AZ developer III[5]
wafer diameter—100mm and 150mm[5]
loading/unloading ports—Two (one cassette for coating, one for development)[5]
wafer centering station—Optical wafer centering station[5]
spin-coating modules—Three (coater A: low-viscosity PR, coater B: high-viscosity PR, coater C: bottom layers)[5]
development module—One, with both puddle and spray options[5]
hotplates—Three stacks, 8 in total[5]
coolplates—Three stacks, 3 in total[5]
additional module—HMDS-priming module[5]
wafer types—Opaque (silicon, SOI) or transparent (glass, fused-silica, sapphire)[5]
process enhancement—AMC filter and active control of chamber and resist/developer line temperature[5]
Wafer sizes—100mm and 150mm diameter[5]
Loading ports—Two loading/unloading ports[5]
Hotplates—Three stacks, 8 total[5]
Coolplates—Three total[5]
HMDS-priming module—Included[5]
Wafer types—Opaque (silicon, SOI) and transparent (glass, fused-silica, sapphire)[5]
AMC filter—Airborne molecular contamination filter on top[5]
Temperature control—Active control of chamber and resist/developer lines temperature[5]
Photoresists available—AZ ECI 3007, AZ ECI 3027, AZ 1512 HS, AZ nLOF 2020, AZ nLOF 2070, MC PC62E; bottom layers: LOR 5A, LOR 15C, XHRiC-16[5]
Wafer size—100mm and 150mm[5]
Photoresist type—i-line[5]
Process enhancement—Airborne molecular contamination filter and active control of chamber and resist/developer line temperature[5]
Priming module—Additional HMDS-priming module[5]
Wafer diameter—100 mm and 150 mm diameter[5]

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Sources (5)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