| HS Code | 854263 |
| Chemical Formula | CO2 |
| Molecular Weight | 44.01 g/mol |
| Cas Number | 124-38-9 |
| Grade | Electronic/EL |
| Purity | ≥99.999% |
| Appearance | Colorless gas |
| Odor | Odorless |
| Physical State At 20c And 1atm | Gas |
| Sublimation Temperature At 1atm | -78.5 °C |
| Triple Point | -56.6 °C at 5.18 atm |
| Critical Temperature | 31.1 °C |
| Critical Pressure | 73.8 atm |
| Gas Density At 0c And 1atm | 1.98 kg/m³ |
| Specific Gravity Vs Air | 1.52 |
| Solubility In Water At 25c And 1atm | 1.45 g/L |
As an accredited Carbon Dioxide (CO₂) Electronic/EL Grade factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Packaged in high-pressure steel cylinders, Electronic/EL Grade CO₂ is supplied in 47-liter containers with ultrapure purity for semiconductor applications. |
| Container Loading (20′ FCL) | Twenty-foot full container load of electronic-grade CO₂, packed in high-pressure cylinders, secured upright, with proper hazard labeling and ventilation. |
| Shipping | Carbon Dioxide (CO₂) Electronic/EL Grade ships as a liquefied compressed gas in high-pressure cylinders or cryogenic containers. It is non-flammable but requires proper pressure relief, secure upright restraint, and compliance with DOT/IATA shipping regulations. Avoid extreme heat; ensure cylinder caps and valve protection are secured during transit. |
| Storage | Store Electronic/EL Grade carbon dioxide in properly specified high-pressure cylinders or cryogenic vessels, kept clean and capped. Maintain temperatures below 52°C and secure cylinders upright in well-ventilated areas. Prevent contamination by using dedicated regulators and ensuring connections remain sealed. Segregate from incompatible materials. Follow all local gas storage regulations. |
| Shelf Life | Shelf life is indefinite under proper storage in sealed cylinders; maintain purity and prevent contamination. |
Expansion of liquid carbon dioxide through a restricted nozzle in a cleanroom-compatible single-phase supply line produces a mixed-phase jet of solid CO₂ particles and gas. In front-end-of-line wafer handling, this snow jet is directed at photomasks, bare silicon wafers, and MEMS substrates to remove particle contamination without leaving liquid residue. The snow particles generated at a stagnation temperature of -78.5 °C sublimate directly to gas at the substrate, so no post-clean drying is required. Liquid CO₂ is supplied at 5.5–6.5 MPa from electronic-grade cylinders meeting SEMI C3 limits; before the nozzle, point-of-use filtration of 0.01 µm or finer removes hydrocarbon and stainless-steel particulates that would otherwise be accelerated toward the device. A co-axial nitrogen shroud flowing at 0.5–1.5 m³/h prevents condensation from room humidity above 45% RH. Production qualification is normally carried out with 0.12 µm polystyrene latex spheres deposited on a test wafer, followed by laser scattering inspection on a KLA Surfscan SP-series tool. The removal mechanism is momentum transfer from solid CO₂ particles, not solvent dissolution; fragile structures such as suspended MEMS beams and thin membrane masks require nozzle-to-substrate distances between 10 mm and 50 mm and SNZ scan speeds below 150 mm/s to avoid thermal-shock fracture. The cleaning module is typically installed in an ISO 14644-1 Class 1 mini-environment.
Nozzle clogging is the dominant process failure mode in production snow cleaning. When liquid CO₂ is withdrawn from a cylinder that has been stored above 31.1 °C, vapor pockets form in the dip tube and cause pressure fluctuations that produce intermittent snow density and particle removal non-uniformity. Hydrocarbon residues from elastomer seals or from cylinder valve packing also accumulate in the nozzle orifice; this is controlled by using all-metal seat valves and by performing daily purge cycles with dry nitrogen. Wafers with exposed copper or porous low-k films require point-of-use ionic contamination monitoring because CO₂ snow cleaning does not remove ionic residues and may redistribute them if they are present in the ambient air. Final production endpoints include 300 mm logic wafers before epitaxy, 6025 photomasks after pellicle mounting, and quartz reticle blanks before multilayer coating. The process is not a substitute for wet chemical cleaning when organic contamination or metal ion removal is required; its operational boundary is particulate contamination only.
| Parameter | Unit | Typical limit | Analytical method |
|---|---|---|---|
| Purity | vol% | 99.999 | Balance/FTIR |
| Moisture | ppmv | <1.0 | CRDS |
| Oxygen | ppmv | <1.0 | GC-PED |
| Total hydrocarbons as CH₄ | ppmv | <0.5 | FID |
| Carbon monoxide | ppmv | <1.0 | GC-TCD |
| Total metals | ppbw | <10 each | ICP-MS |
| Particles ≥0.1 µm | particles/ft³ | <10 | OPC |
After wet release etching of oxide sacrificial layers, capillary forces during evaporation of rinse liquid cause adjoining silicon beams to pull together and permanently bond. Carbon dioxide above its critical point of 31.1 °C and 7.38 MPa has zero surface tension and therefore eliminates the liquid-vapour meniscus responsible for stiction. In production, 200 mm wafers are transferred from an isopropanol rinse bath into a pressure chamber while submerged under liquid CO₂ at 5–10 °C and 4–6 MPa. The IPA is displaced by repeated liquid CO₂ exchange cycles; solvent content in the exhaust separator is monitored by gas chromatography until isopropanol is below 0.1 vol%. The vessel is then heated to 40–60 °C and pressurized to 10–25 MPa, held for 30–120 min, and depressurized at 0.5–1.0 MPa/min while maintaining temperature above 31.1 °C. This depressurization path avoids entering the liquid-vapour coexistence envelope, which would reintroduce a meniscus.
Equipment includes a high-pressure CO₂ pump, an electropolished pressure vessel rated to ASME Section VIII Division 1, a back-pressure regulator, and a separator with activated carbon filters. The process is used after hydrofluoric acid release of sacrificial SiO₂ in accelerometer and gyroscope fabrication, and after deep reactive ion etching of through-silicon vias with aspect ratios above 20:1. Electronic-grade CO₂ for this application must be free of moisture above 1 ppmv, oxygen above 1 ppmv, and total hydrocarbons above 0.5 ppmv, because oxygen can oxidize exposed copper at 40 °C, and hydrocarbons can decompose on heated metal surfaces. A known production failure mode is rapid vessel venting that cools the wafer below the critical temperature and causes solvent re-condensation; pressure-rate control and heated vessel walls are therefore validated during qualification. Published quantitative release-stiction yield data for specific MEMS designs remains limited, but the technique is the standard process for structures that cannot tolerate marangoni drying or low-pressure sublimation drying.
Final downstream parts produced by this route include capacitive accelerometers with comb-drive structures having 2–3 µm gaps, vibrating-ring gyroscopes, digital micromirror devices with buried hinge architecture, and RF MEMS switches. A secondary function of the supercritical CO₂ step is residue removal from high-aspect-ratio cavities; co-solvent addition of 2–10 vol% methanol or acetone is sometimes used to increase polar residue solubility, but co-solvent purity must be controlled to 0.1 µm filtration and moisture below 0.5 wt% to avoid leaving solvent stains after depressurization. Process cycle time is a throughput bottleneck; batch vessels with multiple wafers reduce cost per wafer but increase solvent displacement complexity and require shadow-mask qualification for uniform supercritical phase exposure.
In single-wafer spin cleaning, the resistivity of ultrapure water is deliberately reduced from 18.2 MΩ·cm to a process window of 0.5–2.0 MΩ·cm by dissolving electronic-grade CO₂ through a hydrophobic membrane contactor installed in the point-of-use distribution loop. The resulting carbonic acid solution has a pH between 4.0 and 5.5 and provides a conductive rinse medium that dissipates electrostatic charge from the wafer surface, reducing electrostatic discharge-induced gate oxide damage and particle redeposition. This technique is applied after copper CMP, post-etch residue removal, and dilute HF cleans in single-wafer tools used for 300 mm wafer production. Dissolved CO₂ levels are typically controlled from 10 mg/L to 100 mg/L by regulating gas flow to the contactor with a mass flow controller and measuring inline conductivity with a Thornton M300 resistivity sensor. The UPW feed conforms to SEMI F63 and ASTM D5127 Type E-1 water quality limits.
A process integration boundary is copper corrosion: excessive dissolved CO₂ increases carbonic acid concentration and can etch copper oxide passivation layers if pH falls below 4.0; batch qualification therefore includes open-circuit potential measurements on patterned Cu coupons. Membrane contactor fouling has been observed when upstream ozone-cleaned water carries residual hydrogen peroxide into the contactor, causing gas-side oxidation; for this reason, redox potential is monitored before the contactor. The final downstream products include Cu/low-k logic interconnects, memory capacitors, and backside-illuminated CMOS image sensors, where charge-induced dark current defects must be minimized. Production-scale failure modes include contactor hydrophobic layer breakdown when free chlorine is present above 0.1 ppm and dissolved CO₂ setpoint overshoot during wafer idle periods, which is compensated by fast-response proportional-integral valve control and automated dilution flushing.
| Application | Parameter | Operating range | Equipment type |
|---|---|---|---|
| CO₂ snow cleaning | Liquid supply pressure | 5.5–6.5 MPa | Thermally insulated nozzle |
| CO₂ snow cleaning | Nozzle working distance | 10–50 mm | SNZ scan head |
| Supercritical drying | Vessel pressure | 10–25 MPa | ASME VIII vessel |
| Supercritical drying | Vessel temperature | 40–60 °C | Heated jacket |
| UPW CO₂ injection | Dissolved CO₂ | 10–100 mg/L | Membrane contactor |
| Plasma ashing | O₂:CO₂ flow ratio | 4:1 to 1:1 | ICP asher |
| CO₂ laser gas | CO₂ fraction | 5–15 vol% | Sealed CO₂ laser |
Carbon dioxide is added to oxygen-based plasma ashing and descum processes in back-end-of-line flows where hydrogen-containing chemistries cause copper oxide reduction and low-k damage. In a commercial 300 mm inductively coupled plasma asher, the O₂:CO₂ mass flow ratio is typically set between 4:1 and 1:1, with total flow between 500 sccm and 2000 sccm, chamber pressure from 50 mTorr to 300 mTorr, and RF source power from 500 W to 3000 W at 13.56 MHz. The CO₂ molecule dissociates into CO and O radicals; the CO radical acts as a reducing/neutralizing scavenger for halogen residues from previous etch steps, while oxygen oxidizes carbon in photoresist to CO and CO₂. Endpoint detection is performed by optical emission spectroscopy on CO emission at 483 nm or on atomic oxygen at 777 nm.
This application supports wafer-level packaging, redistribution layer descum, and through-silicon via reveal, where a pure O₂ plasma can oxidize exposed copper or cause resist popping from rapid outgassing. The CO₂ addition reduces resist surface temperature rise and hardens the resist under ion bombardment, improving ion-implanted photoresist strip throughput. A specific operational boundary is the formation of carbonate residues on exposed aluminum bond pads; for wafers with Al pads, downstream aqueous cleaning with dilute citric acid or hydroxylamine-based residue removers is required. Published quantitative strip-rate data for specific low-k film stacks is limited because process recipes are proprietary to individual foundries; tool qualification therefore uses blanket resists and patterned test vehicles with SEM cross-section measurements. Gas purity follows SEMI C3 electronic-grade CO₂; impurities above 1 ppmv moisture increase chamber polymer and reduce mean wafer between cleans.
Across sealed and flowing CO₂ laser platforms, electronic-grade CO₂ is blended with helium and nitrogen to form the active gain medium used for scribing low-temperature co-fired ceramic panels, trimming thick-film resistors, and marking semiconductor packages. Typical sealed-laser gas mixtures contain 5–15 vol% CO₂, 10–30 vol% N₂, and balance helium; the CO₂ partial pressure determines the small-signal gain coefficient at 10.6 µm. Moisture above 1 ppmv in the CO₂ feed leads to dissociation of CO₂ into CO and O₂ in the plasma discharge, causing output power decay and mirror coating degradation. Electronic-grade CO₂ cylinders are typically specified to 5N purity with oxygen below 1 ppmv, total hydrocarbons below 0.5 ppmv, and particles below 10 particles/ft³ at ≥0.1 µm. Gas panels for laser gas mixing are constructed from electropolished stainless steel with 0.01 µm filtration at the point of connection.
In LTCC scribing, a pulsed CO₂ laser with 50–200 W average output and 50–150 µs pulse width cuts unfired ceramic sheets at speeds up to 300 mm/s; downstream products include multilayer RF modules for cellular base stations, automotive radar front-ends, and implantable medical telemetry. For resistor trimming, the laser vaporizes thick-film resistor material in fine steps until the target resistance is reached; resistance drift below 0.1% requires stable gas chemistry because CO₂ decomposition changes the discharge impedance and pulse-to-pulse energy. A known production issue is cylinder changeout contamination: if the changeout is performed without purge-out of the regulator and pigtail, ambient air entering the gas panel elevates O₂ concentration and reduces laser lifetime. Published data for specific laser resonator configurations is limited; laser manufacturers provide gas mixture specifications for each sealed tube design.
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Carbon Dioxide (CO₂) Electronic/EL Grade is defined by control of trace impurities rather than by bulk carbon dioxide concentration alone. The material is supplied as a liquefied gas under dedicated packaging, with a bulk assay typically not less than 99.999% by volume, and with residual moisture, oxygen, hydrocarbons, nitrogen, carbon monoxide, and non-volatile residue held below thresholds that affect semiconductor yield, optical surface quality, and plasma process reproducibility. Product designations commonly appear as CO₂ 5.0 Electronic Grade, CO₂ 5N EL Grade, or CO₂ N5.0. In these designations, 5.0 and 5N denote a minimum assay of 99.999%; the EL suffix indicates an electronics-specific impurity profile. Purchase specifications should state the designation, the standard revision used, fill mass, cylinder size, valve outlet, and certification requirements.
Commercial electronic/EL grade CO₂ data sheets commonly list the acceptance gates shown in the following table. The values reflect typical cylinder-level guarantees; front-end semiconductor sites may request tighter project-specific limits. Where compliance with SEMI C3 is required, the purchase order should identify the revision number because impurity ceilings in semiconductor gas standards are revised periodically.
| Parameter | Typical electronic/EL grade limit | Analytical method |
|---|---|---|
| CO₂ assay | ≥99.999% | Subtraction from measured impurities |
| Moisture (H₂O) | ≤5 ppmv | Cavity ring-down spectroscopy or APIMS |
| Oxygen (O₂) | ≤5 ppmv | GC-PDHID or fuel cell analyzer |
| Total hydrocarbons as methane | ≤2 ppmv | GC-FID after catalytic conversion |
| Carbon monoxide | ≤1 ppmv | GC-PDHID |
| Nitrogen | ≤20 ppmv | GC-PDHID |
| Non-volatile residue | <1 ppmw | Gravimetric after controlled evaporation |
Measurement of these impurities is not performed with low-cost industrial hygrometry. Moisture is detected at low ppmv levels by cavity ring-down spectroscopy or atmospheric pressure ionization mass spectrometry; oxygen and nitrogen are measured by gas chromatography with pulsed discharge helium ionization detection; total hydrocarbons are measured by flame ionization detection after conversion to methane. Calibration gas traceability is maintained under ISO 6141. In addition to the chemical impurity profile, point-of-use filtration to 0.003 µm retention is common because particle contribution from cylinder valve leakage or manifold installation can occur after the gas leaves the filling plant.
Electronic/EL grade carbon dioxide requires packaging control beyond high-purity gas production. Cylinders are drawn from dedicated service and are not shared with industrial, welding, or beverage CO₂. Internally, electronic-grade cylinders are typically 304L stainless steel or 6061 aluminum, polished to a surface roughness of 0.25 µm Ra or better, acid-passivated, dried to a dew point below -40°C, and evacuated to <10 Pa before filling. Cylinders are manufactured to ISO 9809-1 requirements, and cylinder valves are tested according to ISO 10297. Standard North American valve outlet connections for CO₂ service are typically CGA 320. Filling is conducted in an ISO 14644-1 Class 5 environment or equivalent, with manifold purge sequences timed to avoid atmospheric air retention in dead legs.
On production filling manifolds, batch rejection commonly originates from incomplete evacuation between fills, moisture uptake through degraded valve seals, or condensation in transfer lines. A moisture excursion above -60°C in manifold monitoring is often traced to valve seat damage or insufficient bake-out rather than source gas quality. Sites therefore request lot-specific certificates of analysis rather than relying on the product name alone. Cylinders used for electronic/EL grade CO₂ are not lubricated with organic valve compounds; elastomeric seals are limited to trace-moisture-resistant materials or replaced with metal-to-metal diaphragm seals.
In wafer cleaning, electronic/EL grade CO₂ is expanded through a snow nozzle to form solid CO₂ particles that remove submicrometer particles from photomasks, flat panel displays, MEMS substrates, and semiconductor wafers without leaving solvent residues. The process uses the Joule-Thomson expansion of liquid CO₂ to produce a solid/gas mixture at approximately -78°C. Typical tool conditions use a liquid CO₂ feed pressure between 5.5 MPa and 7.0 MPa and nozzle orifice diameters between 0.1 mm and 0.5 mm. At lower feed pressure, the solid-to-gas ratio falls and particle removal efficiency decreases. Snow cleaning tools commonly monitor particle removal efficiency with laser surface inspection before and after processing, with removal targets in the 0.1–0.3 µm range depending on substrate type and nozzle geometry. Published tool-level yield data for this specific configuration is limited.
Electronic/EL grade CO₂ is also injected into ultrapure water loops to form carbonic acid and depress pH without adding corrosive mineral anions. Typical injection rates of 1–5 mg/L maintain pH between 6.5 and 7.2 in semiconductor UPW systems. Hydrocarbon control in the CO₂ stream is critical at this point because reverse osmosis membranes and ion-exchange resins are sensitive to organic fouling. Industrial-grade CO₂ with variable hydrocarbon content is unsuitable for this application even if the bulk assay appears acceptable.
Supercritical CO₂ cleaning and photoresist residue removal is used for porous low-k films and high-aspect-ratio structures where aqueous formulations cause capillary collapse. Carbon dioxide reaches the supercritical state at 31.1°C and 7.38 MPa, providing zero surface tension, gas-like diffusivity, and liquid-like density. Electronic/EL grade CO₂ is preferred in these processes because oxygen, water, and non-volatile residues from lower grades can oxidize copper interconnects, destabilize co-solvent packages, or leave siloxane contamination in the final residue layer. Industrial-scale adoption of supercritical photoresist stripping remains limited; published data for high-volume semiconductor integration is still sparse, but the use of electronic-grade CO₂ reduces process variability associated with hydrocarbon-bearing co-solvents and moisture ingress.
In plasma etch and laser gas blending, electronic/EL grade CO₂ is used where oxygen and moisture contents affect gas-phase chemistry. Trace moisture shifts plasma electron density and can alter etch selectivity; oxygen in CO₂ laser mixtures contributes to gas degradation and optical window contamination. Electronic grade CO₂ is therefore specified for blend preparation where water and oxygen must remain below the ppmv levels contained in the certificate of analysis.
The difference between electronic/EL grade CO₂ and high-purity, beverage, laser-research, or industrial grades is not limited to bulk assay. Electronic grade includes a full analytical certificate for moisture, oxygen, nitrogen, carbon monoxide, total hydrocarbons, and non-volatile residue, and it is packaged in dedicated cylinders that exclude cross-contamination from previous fills. High-purity 4N CO₂ may meet 99.99% assay but does not always carry the same particle and non-volatile residue specifications. Beverage CO₂ is regulated for sensory and toxicological suitability through FDA 21 CFR 184.1240 and EU E290 criteria, but these standards do not address sub-0.1 µm particles, dopant-level oxygen, or volatile metal contamination relevant to semiconductor processing.
| Grade | Typical assay | H₂O | O₂ | Total hydrocarbons | Particle specification |
|---|---|---|---|---|---|
| Electronic/EL | ≥99.999% | ≤5 ppmv | ≤5 ppmv | ≤2 ppmv | Point-of-use filtration to 0.003 µm |
| High-purity 4N | ≥99.99% | ≤20 ppmv | ≤20 ppmv | ≤10 ppmv | Not always specified |
| Beverage / E290 | 99.9% | <50 ppmv typical | Not specified | Not specified | Not specified |
| Industrial / welding | 99.5% | Variable | Variable | Variable | Not specified |
Because grade names are not globally harmonized, users should confirm exact impurity limits against the supplier certificate of analysis and not rely on trade designations alone. Electronic/EL grade CO₂ should be specified as a total package: assay, individual impurity limits, cylinder preparation, analytical certificate, and point-of-use filtration.
Operationally, electronic/EL grade CO₂ is stored as a liquefied gas at room temperature with a vapor pressure of approximately 5.7 MPa at 20°C. Withdrawal above the maximum continuous flow rate causes adiabatic cooling. If the cylinder pressure falls below the triple point of 0.52 MPa at -56.6°C, solid CO₂ can form in the valve or regulator. High-flow snow cleaning and supercritical applications require dual-cylinder changeover manifolds or heated withdrawal equipment to maintain stable feed pressure above 5.0 MPa. Stainless steel regulators with metal-to-metal diaphragms and low-dead-volume purge paths are preferred; elastomeric seals made of Buna-N or neoprene should be avoided because CO₂ plasticizes these materials and generates particles.
The product is not compatible with amine-containing gas mixtures because CO₂ reacts with primary and secondary amines to form carbamates, causing valve blockage and pressure drop. Carbon dioxide should not be used with free moisture and uncoated carbon steel in the same delivery circuit because carbonic acid corrosion can generate iron oxide particles that defeat the purpose of electronic-grade gas. Cylinder storage should remain below 50°C, and backflow prevention with check valves should be installed to protect the manifold from process gases. Electronic/EL grade CO₂ is not sold as a direct substitute for breathing gas or medical carbon dioxide, and it is not intended for use where beverage-grade sensory or toxicological specifications are the governing requirement.