Ningbo, Zhejiang, China – August 23, 2026 – Material selection has a direct impact on equipment yield, maintenance cost, and service life. Two mainstream technical approaches currently dominate the industry:
These two materials may appear to “converge on the same destination”—the surface ultimately exposed to the process atmosphere is silicon carbide in both cases—but their differing internal structures lead to significant differences in performance, cost, and application scenarios.
1. Material Structure and Manufacturing Principles1. Graphite-Based SiC-Coated Material
This material uses high-purity isostatically pressed graphite as the substrate, onto which a polycrystalline SiC coating—typically 100 to 300 μm thick—is grown via chemical vapor deposition (CVD). The graphite substrate provides mechanical strength, machinability, and relatively low density, while the SiC coating serves to block corrosive gases, prevent particle contamination, and increase surface hardness.
Structurally, this can be understood as a “graphite skeleton + SiC armor”: performance is highly dependent on the coating’s density, thickness uniformity, and bond strength with the substrate.
2. Solid (Bulk) SiC Material
This material is also typically produced via CVD, but does not rely on a graphite substrate. Instead, prolonged deposition forms a self-supporting SiC body that can reach several millimeters or more in thickness, which is then precision-machined into its final shape. The bulk material is SiC throughout, from surface to core, eliminating the substrate/coating interface issue entirely.
2. Key Performance Comparison
Performance Dimension
Graphite-Based SiC-Coated
Solid SiC
Purity
Limited by the purity of the graphite substrate itself; metallic impurities from the substrate can leach out once the coating is damaged
Fully SiC structure; overall purity can reach 99.9995% or higher, with no risk of substrate contamination
Thermal Conductivity
Generally higher (100–150 W/m·K), owing to the graphite substrate
Somewhat lower (approx. 120–270 W/m·K, depending on crystal form), but with better thermal uniformity
Thermal Expansion Matching
Difference in thermal expansion coefficients between graphite and SiC; microcracks can develop in the coating during high-temperature cycling
Homogeneous material with no internal stress mismatch; more stable thermal shock resistance
Corrosion Resistance
Dependent on coating integrity; once pinholes or chipping appear, corrosive gases attack the underlying graphite, causing “blistering” or “flaking”
Fully SiC structure; corrosion occurs only at the surface and progresses very slowly, with no risk of internal attack
Particle Contamination Risk
Coating aging and flaking generate particles, a major yield risk factor for advanced process nodes
Significantly lower particle generation rate; better suited to advanced process nodes
Mechanical Strength / Flexural Strength
Moderate, limited by the strength of the graphite substrate
Higher, with a pronounced advantage in thin-wall, large-size, complex-geometry components
Density and Weight
Lighter (graphite density approx. 1.7–1.9 g/cm³)
Heavier (SiC density approx. 3.2 g/cm³); handling and automation design must account for this in large components
Machining Difficulty and Cost
Substrate is easy to machine; coating process is relatively mature; overall cost is lower
SiC hardness is high (Mohs 9.5); machining is difficult, manufacturing cycle is long, and cost is significantly higher
Service Life
Limited by coating life; periodic inspection/recoating is typically required
Longer service life, with a pronounced advantage under strongly corrosive, high-temperature cyclic conditions
Repairability
Coating can be re-applied at the factory, extending the substrate’s service life to some extent
Once damaged, the part typically must be scrapped entirely; refurbishment cost is high
3. Typical Application ScenariosGraphite-Based SiC-Coated Material Is Better Suited For:
Solid SiC Material Is Better Suited For:
4. Key Considerations for Material Selection
Looking at specific equipment types, there is a clear divergence in the proportion of graphite SiC-coated versus solid SiC materials actually used in production lines. This reflects differing emphases across process steps regarding corrosion intensity, thermal cycling characteristics, and particle control requirements:
1. 12-Inch Etch Equipment: The usage rate of solid SiC is significantly higher than that of graphite SiC-coated material. Etch chambers (particularly in high-concentration halogen plasma environments such as Cl₂ and F-based chemistries) are highly corrosive, and 12-inch advanced process nodes are extremely sensitive to particle contamination—once the coating develops pinholes or edge chipping, flaking particles directly impact yield. Solid SiC has a uniform cross-section throughout with no risk of coating delamination, and is therefore more widely adopted for electrostatic chucks, edge rings, and liners in 12-inch etch equipment, despite higher procurement and machining costs.
2. RTP (Rapid Thermal Processing) Equipment: Solid SiC is likewise the dominant choice. The core characteristic of RTP processes is rapid heating and cooling with repeated thermal cycling, which places extremely high demands on a component’s thermal shock resistance and temperature uniformity. The mismatch in thermal expansion coefficients between the graphite substrate and the SiC coating makes the coating prone to microcracking or even delamination under intense temperature cycling, whereas solid SiC is uniform throughout with no interfacial mismatch issues, offering more stable thermal shock resistance. As a result, key RTP chamber components such as susceptors and support rings tend to favor solid SiC.
3. Epitaxy Equipment: Graphite SiC-coated material is more commonly used here. The temperature window and corrosion intensity of epitaxy processes (such as conventional MOCVD and LPCVD epitaxy furnaces) are relatively milder than those of etch or RTP, making coating integrity easier to maintain. At the same time, components such as wafer boats and trays in epitaxy equipment tend to be larger in size and used in greater quantities—the graphite substrate is lighter, easier to machine, and significantly lower in cost, while also being more conducive to automated handling. This makes graphite SiC-coated material a better overall value proposition for epitaxy, a process step with somewhat less extreme particle control requirements than etch, but with greater sensitivity to cost and throughput.
Conclusion
Graphite-based SiC-coated material and solid SiC are not simply a matter of one being “better” than the other—rather, they represent two different trade-offs between cost and performance. The former meets moderate-duty requirements at a lower cost, while the latter trades a higher upfront investment for longer service life, lower particle risk, and more stable process performance. Material selection should be based on specific process conditions, process-node requirements, and an overall cost model, with small-batch trials used where necessary to compare actual performance under real operating conditions before making a full-scale rollout decision.
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