Waferpedia

Comparison ledger

6550versusUnity Me

Tegal 6550, Tokyo Electron Unity Me, side by side. Every value shown is drawn from the cited encyclopedia entries.

Side-by-side comparison of selected equipment models
Attribute
6550Tegal
Unity MeTokyo Electron
OEMTegalTokyo Electron
CategoryEtchEtch
Wafer size100mm100mm
Process node——
Introduced2000—
Production run——
Lifecycle——
Lifecycle milestones2000 Patent announcement · 2001 Order announced—
Control system——
Generation——
FamilyTegal 6550Tokyo Electron Unity Me
Cited variants
  • 6550 Spectra[1]
—
Specifications
Product typeetch reactor / plasma etch system[2]—
Wafer size100mm–200mm[1]100mm[4]
Process targetnon-volatile metal and metal oxide films[2]—
Primary applicationvolume production of magnetic memory components such as MRAM and GMR devices[2]—
Platformfull cluster tool technology[2]—
Process capabilitypatented rinse-strip-rinse feature / process capability[2]—
Chamber configurationdual-chamber platform[3]—
Plasma sourcepatented next-generation dual-frequency plasma source technology[2]—
Plasma source (later material)Spectra plasma source[3]—
Available optiondeposition shield[2]—
Typeplasma etch reactor[2]—
Processesetching non-volatile metal and metal oxide films[2]—
Plasma source technologypatented next-generation, dual-frequency plasma source technology[2]—
VariantSpectra plasma source[3]—
Equipment type—Automatic plasma etching production tool[4]
OEM—Tokyo Electron (TEL)[4]
Configured wafer size—100mm[4]
Available cassette loader—C1 for 100mm wafers[4]
Process chamber—DRM (Dipole Ring Magnet) chamber[4]
DRM chamber type—RIE chamber with assistance of a magnetic field[4]
Optimized application—Etching dielectrics such as SiO2 and SixNy[4]
Chamber type—DRM (Dipole Ring Magnet) RIE chamber[4]
Process gases—C4F8 (30 sccm), CF4 (100 sccm), CHF3 (100 sccm), CH2F2 (100 sccm), O2 (30 sccm and 1000 sccm), N2 (100 sccm), Ar (1000 sccm)[4]
Process: CMI.BARC (BARC open)—Gap: 47 mm, SH temp: 40°C, Chemistry: CF4, Mask: JSR M108Y, JSR M35G, DUV42P; Etch rates: DUV42P 110 nm/min, M108Y/M35G 110 nm/min, SiO2 170 nm/min, Si 85 nm/min; Selectivity 1:1[4]
Process: CMI.OX.PR (SiO2 etch with PR mask)—Gap: 47 mm, SH temp: 40°C, Chemistry: C4F8 O2 Ar, Mask: PR; Etch rates: SiO2 440 nm/min @600W, 230 @500W, 200 @400W, 160 @300W, 125 @200W, 85 @100W; Selectivity >3:1[4]
Process: CMI.OX.ASI (SiO2 etch with aSi mask)—Gap: 47 mm, SH temp: 40°C, Chemistry: CH2F2 C4F8 O2 Ar, Mask: aSi; Etch rates: SiO2 450 nm/min, aSi 35 nm/min, JSR M108Y 130 nm/min; Selectivity 12:1[4]
Process: CMI.SIN.OX (Si3N4 etch)—Gap: 37 mm, SH temp: 40°C, Chemistry: CH2F2 O2 Ar, Mask: HSQ, PR; Etch rates: Si3N4 130 nm/min, Si 25 nm/min, HSQ 80 nm/min, PR 125 nm/min; Selectivity >1:1[4]
Tool type—Automatic plasma etching production tool[4]
Chamber dedication—Dedicated to and optimized for etching dielectrics (e.g. SiO2 and SixNy)[4]
Available process gases—C4F8 [30 sccm], CF4 [100 sccm], CHF3 [100 sccm], CH2F2 [100 sccm], O2 [30 sccm & 1000 sccm], N2 [100 sccm], Ar [1000 sccm][4]
Cassette loader—C1 for 100mm wafers[4]
Transfer chamber—One transfer chamber (T/C)[4]
Unavailable modules at EPFL CMi—C2 cassette loader and P2 SCCM (Super Capacitively Coupled Module) process chamber are offline[4]
Metallic contamination restriction—The TEL etcher must NOT be exposed to any metallics or even traces of metallics; wafers once in contact with metallics must not be loaded[4]
Example process: CMI.BARC—Chemistry CF4; gap 47mm / SH temp 40°C; etch rate DUV42P 110 nm/min, M108Y/M35G 110 nm/min; selectivity SiO2: 170, Si: 85[4]
Example process: CMI.OX.PR—Chemistry C4F8 O2 Ar; gap 47mm / SH temp 40°C; SiO2 etch rates 440 nm/min @1100W, 230 nm/min @500W, 200 nm/min @400W, 160 nm/min @300W, 125 nm/min @200W, 85 nm/min; selectivity PR >3:1[4]
Example process: CMI.OX.ASI—Chemistry CH2F2 C4F8 O2 Ar; gap 47mm / SH temp 40°C; etch rates SiO2 450 nm/min, aSi 35 nm/min, JSR M108Y 130 nm/min; selectivity 12:1[4]
Example process: CMI.SIN.OX—Chemistry CH2F2 O2 Ar; gap 37mm / SH temp 40°C; etch rates Si3N4 130 nm/min, Si 25 nm/min, HSQ 80 nm/min, PR 125 nm/min; selectivity >1:1[4]
Process gases (DRM chamber)—C₄F₈ [30 sccm], CF₄ [100 sccm], CHF₃ [100 sccm], CH₂F₂ [100 sccm], O₂ [30 sccm & 1000 sccm], N₂ [100 sccm], Ar [1000 sccm][4]
Etch process - BARC open (CMI.BARC)—Chemistry: CF₄; Gap 47 mm, SH temp 40°C; Etch rate DUV42P: 110 nm/min, JSR M108Y, M35G: 110 nm/min; Selectivity: 1:1[4]
Etch process - SiO₂ with PR mask (CMI.OX.PR @1100W)—Chemistry: C₄F₈ O₂ Ar; Etch rate SiO₂: 440 nm/min @600W, 230 nm/min @500W, 200 nm/min @400W, 160 nm/min @300W, 125 nm/min @200W, 85 nm/min @?; Selectivity >3:1[4]
Etch process - SiO₂ with aSi mask (CMI.OX.ASI)—Chemistry: CH₂F₂ C₄F₈ O₂ Ar; Etch rate SiO₂: 450 nm/min, aSi: 35 nm/min, JSR M108Y: 130 nm/min; Selectivity 12:1[4]
Etch process - Si₃N₄ with HSQ mask (CMI.SIN.OX)—Chemistry: CH₂F₂ O₂ Ar; Etch rate Si₃N₄: 130 nm/min, Si: 25 nm/min, HSQ: 80 nm/min, PR: 125 nm/min; Selectivity >1:1[4]
Chamber clean process—Chemistry: O₂; Gap 27 mm, SH temp varies; Process name O2/CLN/XXC[4]
DRM chamber optimization—optimized for etching dielectrics such as SiO2 and SixNy[4]

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Sources (4)Every fact above is drawn from these public sources
  1. [1]web.archive.orgweb.archive.org
  2. [2]web.archive.orgweb.archive.org
  3. [3]web.archive.orgweb.archive.org
  4. [4]epfl.chepfl.ch