In this guide
A desktop CO₂ laser cutting machine is one of the most versatile choices for acrylic, wood, MDF, leather, fabric, paper and many other non-metal materials. The best machine is not always the model with the highest wattage. Your material mix, normal thickness, engraving detail, work area, ventilation and business workflow matter just as much as power.
Quick Answer: Which CO₂ Laser Should You Choose?
Choose by the work you plan to produce—not by the largest wattage printed in an advertisement.
| Your Main Requirement | Best Starting Point | Why |
|---|---|---|
| General acrylic, wood and MDF cutting | Cloud Pro II 50W/55W | Strong value, practical cutting power and a 510 × 300 mm desktop work area |
| Fine text, photos and high-detail engraving | Cloud RF 38W | Fine 0.07 mm spot and website-listed engraving speed up to 1200 mm/s |
| Metal plus acrylic, wood and fabric | MCore | Combines an 80W CO₂ source for non-metals with a 400W fiber source for supported metals |
| Lowest-cost entry into laser projects | G1 10W diode | Lower purchase price, but slower cutting and more material limitations than CO₂ |
How Does a CO₂ Laser Cutting Machine Work?
A CO₂ laser produces infrared energy in a gas-filled laser tube. Mirrors guide the beam to a focusing lens, which concentrates it into a small spot on the material. A motion system moves the laser head along the paths in your design file. The focused heat vaporizes, melts or burns away a narrow line of material to create a cut or engraved mark.
Several systems work together during this process:
- The laser tube determines the available optical power and influences engraving behavior.
- The mirrors and lens deliver and focus the beam.
- Air assist helps control flame, clear debris and protect the lens.
- Exhaust removes smoke and fumes from the enclosure.
- Cooling keeps the tube within its operating temperature range.
- Software and motion control convert vector or image files into cutting and engraving paths.
Cutting normally uses enough power to pass through the material. Engraving removes or changes only the surface. A machine that cuts 10 mm acrylic does not necessarily use the same settings or produce the same detail as a machine optimized for small text and photo engraving.
What Materials Can a CO₂ Laser Cut and Engrave?
One of the strongest CO₂ applications
CO₂ lasers can cut clear, colored, cast and extruded acrylic. Cast acrylic is often selected for frosted engraving, while cutting behavior varies by formulation and thickness.
Cut, engrave and personalize
Basswood, plywood and many solid woods are common choices. Resin, glue, moisture and grain affect speed, smoke and edge darkening.
Useful for signs, models and décor
MDF can cut consistently, but density and binder chemistry vary. Good extraction, air assist and a scrap test are essential.
Cut shapes and engrave details
Natural leather is widely used for patches, wallets, labels and accessories. Avoid unknown synthetic leather that may contain PVC.
Clean contours on suitable textiles
CO₂ cutting can seal the edge of some synthetic fabrics. Fiber type, weave, coatings and backing must be confirmed before processing.
Fast cutting with low heat input
Packaging, invitations, stencils and models are common uses. Settings must control scorching and open flame.

CO₂ lasers can also engrave glass, ceramic, stone, coated metal and anodized aluminum when the material and surface treatment are suitable. Engraving a coating is different from cutting through the underlying metal.
For detailed material workflows, see the guides to acrylic laser cutting settings, clean MDF and plywood cutting, and leather and fabric laser settings.
How Much CO₂ Laser Power Do You Need?
38W–40W: precision engraving before maximum thickness
This class is a good fit when detail, small text and engraving speed are more important than maximum cutting depth. The Cloud RF uses a 38W RF metal tube, not a 40W glass tube. Its product page lists a 0.07 mm spot and engraving speeds up to 1200 mm/s.
Do not reject an RF machine because its wattage is lower than a 50W glass-tube machine. Tube type, spot size, pulse control and intended workflow make a direct watt-for-watt comparison misleading.
50W–55W: the best starting range for most desktop users
For general acrylic, wood, MDF, leather and craft production, a 50W or 55W Cloud Pro II is the most direct choice in the current GWEIKE Cloud CO₂ range. It balances useful cutting capacity, desktop size, LightBurn support, camera positioning and cost.
The difference between 50W and 55W is modest. Choose between them using the current configuration, price, availability, tube condition, tested material results and support—not an assumption that 5W will transform production.
80W: stronger non-metal capacity plus a fiber-laser workflow
MCore includes an 80W CO₂ source and a separate 400W fiber source. Its CO₂ system is intended for acrylic, wood, MDF, leather and fabric, while the fiber system processes supported metals. The product page lists up to 20 mm acrylic in one pass under stated conditions.
MCore is therefore not simply the next CO₂ wattage above Cloud Pro II. It is a different business decision for shops that want to bring both metal and non-metal production into one platform.
100W: when a larger dedicated CO₂ machine may make sense
A 100W machine may suit frequent thick-material cutting, larger beds and higher-volume non-metal work. However, GWEIKE Cloud’s current desktop CO₂ recommendations in this guide do not include a dedicated 100W model. If your normal workload truly requires this class, compare verified samples, machine size, cooling, electrical needs and production speed before buying.
CO₂ Laser Material Thickness Guide
The figures below are product-page references, not universal guarantees. Some values are maximum claims under specific conditions; they should not be treated as recommended daily-production thicknesses for every material.
| Material | Cloud Pro II 50W | Cloud RF 38W | MCore 80W CO₂ | G1 10W Diode |
|---|---|---|---|---|
| Acrylic | Product material table lists up to 15 mm | Supported; request thickness-specific test data | Product page lists up to 20 mm in one pass | Product table lists black acrylic up to 5 mm in one pass |
| Basswood | Specification lists a 15 mm maximum cutting depth | Supported; optimized more toward detail and speed | Supported; verify the exact wood and thickness | Product table lists 3 mm in one pass; thicker examples require testing or multiple passes |
| MDF | Product material table lists 9 mm | Supported; confirm speed and edge quality | Supported; use material-specific test settings | Product table lists 2 mm using multiple passes |
| Leather | Supported; thickness and type must be tested | Strong option for detailed engraving | Supported for cutting and engraving | Suitable for selected thin leather |
| Fabric | Supported; test fiber and coating | Suitable for fine designs on approved fabric | Supported; test single-layer material first | Suitable for selected thin fabrics |
CO₂ Glass Tube vs RF Metal Tube
| Comparison | Glass CO₂ Tube | RF Metal CO₂ Tube |
|---|---|---|
| GWEIKE example | Cloud Pro II 50W/55W | Cloud RF 38W |
| Main strength | Strong general cutting value | Fine spot, detail and engraving speed |
| Best-fit work | Acrylic, wood, MDF and general craft production | Photos, small text, fine patterns and premium engraving |
| Cooling | Water-cooled system | Cloud RF product page lists a built-in air chiller |
| Buying focus | Tube life, cooling, alignment and replacement cost | Engraving quality, RF service options and total ownership cost |
| Initial price direction | Lower | Higher |
Choose a glass-tube machine when general cutting and purchase value lead the decision. Choose RF when engraving detail and speed create the value in your finished products. Read the dedicated glass vs metal CO₂ laser tube comparison before making the final choice.
Working Area, Pass-Through and Conveyor Feeding
Wattage does not determine whether your product fits. Measure the largest normal part, not only the raw sheet. Add space for margins, fixtures, camera alignment and nesting.
| Machine | Working Area | Material-Handling Direction |
|---|---|---|
| Cloud Pro II | 510 × 300 mm | Desktop enclosed bed with a bottom-feeding design for suitable projects |
| Cloud RF | Approximately 510 × 290 mm | Compact enclosed bed with rotary support |
| MCore | 711 × 411 mm | Larger platform with an intelligent conveyor option for long material workflows |
| G1 | 410 × 310 mm | Open-frame diode platform |
Pass-through or conveyor capability does not make the usable cutting width unlimited. Confirm maximum material width, thickness, support method, camera behavior and how accurately long jobs can be indexed.
CO₂ vs Diode vs Fiber Laser
| Technology | Best For | Main Limitation | GWEIKE Direction |
|---|---|---|---|
| CO₂ | Clear acrylic, wood, MDF, leather, fabric, paper | Does not cut ordinary bare metal in this desktop class | Cloud Pro II or Cloud RF |
| Diode | Low-cost entry, thin wood and dark acrylic | Transparent acrylic and thicker cutting are more limited | G1 10W |
| Fiber | Supported metals | Not the normal choice for wood and clear acrylic | MCore fiber source or M Series |
| CO₂ + fiber | Businesses selling both metal and non-metal products | Higher investment than a single-purpose desktop machine | MCore |
A standard desktop CO₂ machine can engrave some coated or anodized metal surfaces, but it should not be marketed as a bare-metal cutter. See Can a CO₂ Laser Cut Stainless Steel? and the fiber vs CO₂ material comparison for more detail.
CO₂ Laser Cutter Price and Ownership Cost
As of July 31, 2026, the US website displayed the following sale prices. Prices, regional availability, shipping and promotions can change, so check the live product page before publishing a quote or placing an order.
| Product | Displayed Price* | Price Position |
|---|---|---|
| G1 10W diode | $239 | Entry-level technology comparison |
| Cloud Pro II 50W | $1,659 | Best-value CO₂ starting point |
| Cloud Pro II 55W | $1,749 | Small power step within the Pro II family |
| Cloud RF 38W | $3,399 | Premium precision-engraving option |
| MCore | $6,999 | Dual-source metal and non-metal platform |
*Displayed website prices checked July 31, 2026. Excludes configuration changes, shipping, taxes and regional differences.
The complete cost is more than the machine price. Budget for:
Prepare the workspace
- Shipping and applicable taxes
- Exhaust ducting or air filtration
- Electrical supply and worktable
- Rotary, riser or conveyor accessories
- Initial material and testing
Calculate cost per product
- Laser tube and optical components
- Lenses, mirrors and cleaning supplies
- Filters, coolant and maintenance
- Material waste and operator time
- Software and design workflow
For a small business, compare cost per finished product and payback time. A more expensive RF system can make sense when fine engraving commands a premium. MCore can make sense when it replaces outsourced metal work as well as a separate CO₂ machine.
GWEIKE CO₂ Laser Product Comparison
| Product | Laser | Work Area | Best Fit | Key Decision |
|---|---|---|---|---|
| Cloud Pro II | 50W/55W glass CO₂ | 510 × 300 mm | General cutting, engraving and small-business production | Best balance of price and non-metal capability |
| Cloud RF | 38W RF metal CO₂ | Approx. 510 × 290 mm | High-detail and higher-speed engraving | Choose quality and workflow over wattage alone |
| MCore | 80W CO₂ + 400W fiber | 711 × 411 mm | Mixed metal and non-metal product businesses | Buy for dual-material capability, not only 80W |
How to Choose the Right CO₂ Laser Cutter
List the materials you will actually sell
Separate acrylic, wood, MDF, leather and fabric from any metal requirements.
Record normal and occasional thickness
Choose from the material used every week, not a maximum project you may never receive.
Decide whether cutting or engraving creates the value
Cloud Pro II favors general cutting value; Cloud RF favors fine engraving; MCore expands the material range.
Measure the largest normal product
Check the usable work area, feeding direction, rotary needs and room for fixtures.
Plan ventilation, cooling and maintenance
Confirm where fumes will go, how the cooling system is maintained and what consumables are locally available.
Request an exact-material sample
Judge speed, edge finish, engraving detail and repeatability before making the final purchase decision.
Final Recommendation
Choose Cloud Pro II for the best all-around desktop CO₂ cutting value. Choose Cloud RF when fine engraving and speed matter more than maximum cutting thickness. Choose MCore when your business needs both non-metal CO₂ processing and real metal cutting. Consider G1 only as a lower-cost diode starting point.
Explore Cloud Pro II Explore Cloud RF Explore MCore Ask GWEIKE for AdviceFrequently Asked Questions
What wattage CO₂ laser cutter do I need?
For most desktop acrylic, wood and MDF projects, 50W/55W is a practical starting range. Choose RF for fine engraving and MCore’s 80W CO₂ system when you also need a larger work area and supported metal processing through its separate fiber source.
Is a 50W CO₂ laser enough to cut acrylic?
Yes. The Cloud Pro II 50W product material table lists acrylic up to 15 mm under its test conditions. Your repeatable production thickness will depend on acrylic type, focus, air assist, speed and required edge finish.
What is the difference between 50W and 55W?
The nominal difference is small. Compare the current model configuration, price, availability and results on your actual materials rather than assuming that 5W creates a major change in capability.
Is an RF laser better than a glass-tube CO₂ laser?
It depends on the work. RF is attractive for a fine spot, small details and fast engraving. Glass tubes usually offer better initial value for general cutting. Neither is automatically best for every user.
Can a CO₂ laser cut metal?
A standard desktop CO₂ machine in this class is not intended to cut ordinary bare metal. It can engrave selected coated or anodized surfaces. Choose a fiber source—such as the one in MCore—when metal cutting is required.
Can a CO₂ laser cut clear acrylic?
Yes. Clear acrylic is a major CO₂-laser application and an important advantage over many visible-light diode lasers.
How thick can a desktop CO₂ laser cut?
There is no universal thickness. The result depends on power, material formulation, focus, optics, air assist, speed and quality requirements. Use product-page data as a reference and verify with an exact-material sample.
CO₂ or diode—which is better for beginners?
A diode machine has a lower entry price and can suit thin wood and dark acrylic. A CO₂ machine offers broader non-metal compatibility, including clear acrylic, and typically stronger cutting performance.
How long does a CO₂ laser tube last?
Tube life varies with tube type, operating power, cooling, temperature, manufacturing quality and maintenance. The Cloud Pro II 50W page lists a 10,000-hour glass-tube lifespan, but actual service life depends on use and care.
Do I need ventilation and air assist?
Yes. Proper exhaust is necessary to remove smoke and fumes, and air assist helps control flame, clear debris and protect the lens. Filtration requirements depend on material and local workspace conditions.
Which GWEIKE CO₂ laser is best for a small business?
Cloud Pro II is the strongest general recommendation for non-metal products. Cloud RF fits premium engraving businesses. MCore fits shops that want to combine metal and non-metal production.
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