2026-09-08
Thermal grease - also called thermal paste, thermal compound, or heat sink compound - is a paste-like thermally conductive silicone material used to improve heat transfer between two contacting surfaces. If you have ever asked "what is thermal grease?", this guide answers the question in depth and explains how to select the right thermal paste for electronics manufacturing.
Thermal grease is a soft, paste-like interface material made of silicone oil as the base fluid and highly thermally conductive fillers such as alumina, zinc oxide, boron nitride and aluminum nitride. It is applied between a heat source (CPU, GPU, IGBT, LED, power module) and a heat sink to fill microscopic air gaps that exist even on apparently flat machined surfaces.
Air is a poor heat conductor. By replacing air with a material whose thermal conductivity is far higher, thermal grease dramatically reduces contact thermal resistance and keeps components cooler.
No surface is perfectly flat. Under a microscope, metal surfaces show valleys and peaks of several microns. When two surfaces are pressed together, air pockets remain trapped, blocking heat flow. Thermal grease flows into these micro-gaps under mounting pressure, creating continuous heat paths from the component to the heat sink.
| Layer | Role in heat path |
|---|---|
| Component die (CPU/IGBT) | Heat source |
| Thermal grease layer | Fills micro-gaps, transfers heat |
| Heat sink base | Spreads and dissipates heat |
Thermal grease is used wherever heat must be moved efficiently: CPU and GPU coolers, graphics cards, notebook cooling modules, IGBT modules, switching power supplies, LED lamps and drivers, automotive electronics, EV battery thermal management, 5G base stations and industrial inverters.
Compared with pre-formed thermal pads, thermal grease achieves a thinner bond line and lower thermal impedance, which is why high-power CPUs, GPUs and IGBT modules use grease. Thermal pads are faster to assemble and easier to rework, making them popular for mass-produced consumer electronics. Many designs combine both: grease on the main die and pads on surrounding low-power components.
| Model | Thermal conductivity | Type | Operating range | Typical use |
|---|---|---|---|---|
| HN100 | 1.0 ± 0.1 W/m·K | Insulating, non-curing | -50 to +200°C | LED drivers, power supplies, transistors |
| HN200 | 2.05 ± 0.1 W/m·K | Insulating, non-curing | -50 to +200°C | CPUs, automotive electronics, modules |
| HN300 | 2.95 ± 0.1 W/m·K | Insulating, non-curing | -40 to +180°C | Power modules, sensors, LED interfaces |
| HN400 | 4.05 ± 0.1 W/m·K | Low-resistance fillers | -50 to +200°C | High heat flux, non-exposed surfaces |
| HN500 | 5.05 ± 0.1 W/m·K | Metal-filled, low BLT | -40 to +200°C | CPU/GPU, OBC, PV inverters |
| HN600 | 6.05 ± 0.1 W/m·K | Metal-filled, ultra-low Rth | -40 to +200°C | High-end CPU/GPU, PLC, servers |
Standard ceramic-filled thermal grease is electrically insulating. Only special silver or metal-filled grades are conductive, and they must be used carefully to avoid short circuits.
High-quality non-curing silicone grease can last 5-8 years in normal electronics use. In high-temperature or high-vibration applications, periodic inspection is recommended.
No. A thick layer increases thermal resistance. The best result comes from the thinnest possible layer that still fills the surface gaps.
Thermal grease is one of the most cost-effective reliability components in electronics. Choosing the correct thermal paste - by conductivity, viscosity, insulation and durability - directly affects product temperature, lifetime and warranty cost. For bulk supply of thermally conductive silicone grease with consistent quality, contact Hanast to request samples and technical data.