Waferpedia

Comparison ledger

Multiplex ICPversus6540

STS Multiplex ICP, Tegal 6540, side by side. Every value shown is drawn from the cited encyclopedia entries.

Side-by-side comparison of selected equipment models
Attribute
6540Tegal
OEMSTSTegal
CategoryEtchEtch
Wafer size100mm100mm
Process node—down to 90nm
Introduced——
Production run——
Lifecycle——
Lifecycle milestones——
Control systemDOS—
Generation——
FamilySTS Multiplex ICPTegal 6540
Cited variants—
Specifications
Tool typeload-locked, inductively coupled plasma etch system[2]—
Processdeep silicon etching using the Bosch process[2]—
Process gasesSF6, C4F8, O2, Ar[2]—
Wafer size100 mm wafers[2]100mm – 200mm[1]
Carrier requirementWafers smaller than 100 mm and irregularly shaped samples must be placed on a 100 mm carrier[2]—
Platen size100 mm[2]—
ICP power range0–900 Watts[2]—
Bias power range0–30 Watts[2]—
MFC flow range - SF60–300 sccm[2]—
MFC flow range - C4F80–200 sccm[2]—
MFC flow range - O20–100 sccm[2]—
MFC flow range - Ar0–100 sccm[2]—
Pressure range< 90 mTorr[2]—
Backside coolingHelium[2]—
ClampingClamped[2]—
Selectivity to photoresist50:1[2]—
Selectivity to wet thermal SiO2100:1[2]—
Typical repeatable aspect ratio10:1[2]—
OEMSTS[3]—
ModelMultiplex ICP[3]—
Wafer Size4 inches and 6 inches wafers[3]—
Plasma TypeInductively Coupled Plasma (ICP)[3]—
RF Frequency (ICP source)13.56 MHz[3]—
Substrate Bias Power (maximum)300 W[3]—
Substrate Chuck Temperature20°C[3]—
Substrate ClampingElectrostatic clamping[3]—
Load Lock TypeTransfer loadlock with high vacuum during loading/unloading[3]—
Materials EtchedInsulators (SiO2, Si3N4, SiC), silicon, metals (Al Alloys, Pt, Ti), some polymers[3]—
Typeload-locked inductively coupled plasma etch system[2]high-density plasma etch system[5]
Wafer handlingsmaller wafers and irregularly shaped samples placed on a 100 mm carrier[2]—
Mask materialsphotoresist and silicon dioxide (SiO2)[2]—
Applicationsetching insulators, silicon, metals, and some polymers[3]—
Dedicated etch materials at CMimetals, quartz, and polyimide[3]—
Chuckbiasing chuck controlled in temperature[3]—
Temperature control20°C[3]—
Wafer sizes supported4 inches and 6 inches[3]—
Max RF generator power300 W[3]—
Control softwareentirely computer controlled[3]—
Endpoint detectionfitted with an End Point Detection (EPD) system[3]—
Substrate holder RF biasing power300 W maximum[3]—
Number of gas MFCs8[3]—
Pumping system1000 l/s turbo pump[3]—
Base pressure (without process)few 10^-7 mb[3]—
Wafer clampingElectrostatic clamping with helium backside cooling[3]—
End Point DetectionYes[3]—
Etching materials (general)Insulators (SiO2, Si3N4, SiC), silicon, metals (Al alloys, Pt, Ti), polymers[3]—
Al etch rate (standard Cl2/BCl3 process)0.2 to 0.5 um/min[3]—
Si etch rate (standard Cl2 process)0.35 um/min[3]—
Polyimide etch rate (oxygen chemistry)>1 um/min[3]—
Chemistrychlorine and bromine chemistry[4]—
Compatibilitymicroelectronic compatible equipment[4]—
Chuck typeElectrostatic clamping and biasing chuck[3]—
Wafer compatibilityAdaptable for 4 inches and 6 inches wafers[3]—
ControlEntirely computer controlled[3]—
End point detectionEnd Point Detection (EPD) system[3]—
Bias RF power maximum300 W maximum[3]—
ICP sourceAntenna connected to an RF power supply and wrapped around an alumina cylinder[3]—
Reactor—HRe reactor / HRe™ reactor[5]
Plasma technology—dual-frequency RF power technology / dual-frequency RF power application[5]
Plasma confinement—magnetic plasma confinement[5]
Optimized design rule—down to 0.13 micron[5]
RF power—dual-frequency RF power application[1]
Design rule—optimized for device design rules down to 90nm[1]

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Sources (6)Every fact above is drawn from these public sources
  1. [1]web.archive.orgweb.archive.org
  2. [2]cores.research.asu.educores.research.asu.edu
  3. [3]epfl.chepfl.ch
  4. [4]epfl.chepfl.ch
  5. [5]web.archive.orgweb.archive.org
  6. [6]web.archive.orgweb.archive.org