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Turning friction heat into a chemical cushion to shape flawless semiconductor crystals

09.15.26 | International Journal of Extreme Manufacturing

The hardest part of building the electric vehicles and clean-energy power grids of tomorrow might be carving the brittle and diamond-hard crystals needed to run them. Silicon carbide is a prized semiconductor capable of handling enormous voltages, but shaping raw ingots into mirror-smooth wafers typically shatters the surface with microscopic cracks that can cause microchips to fail.

In International Journal of Extreme Manufacturing , Prof. Shuiquan Huang at Yanshan University, Prof. Han Huang at Sun Yat-Sen University and their co-workers have flipped a long-standing manufacturing curse on its head, using the destructive friction heat of high-speed cutting to trigger a chemical reaction that lets diamond tools carve brittle crystals as smoothly as butter.

Wafer manufacturers have wrestled with a punishing trade-off. Grinding discs embedded with diamond grit can flatten silicon carbide quickly, but the violent impacts leave behind deep sub-surface fractures. To buff out those cracks, manufacturers must rely on sluggish chemical slurries that take days to smooth away a single millimeter of material, severely bottlenecking output. Earlier strategies tried softening the crystal first using high-power lasers, which risk warping the wafer with excessive heat, or corrosive chemical oxidizers that gradually destroy the precision grinding machines themselves.

Prof. Huang’s team tackled the problem by turning to a clever chemical additive borrowed from 3D printing: a non-toxic azo compound called ACVA dissolved in an everyday liquid polymer coolant.

Under resting conditions, the mixture behaves like standard industrial lubricant. But the moment a diamond grit strikes the wafer, the intense micro-contact friction instantly spikes the localized temperature exceeding 45°C. This brief flash of heat causes the additive to split into fleeting free radicals, which immediately attack the top layer of silicon atoms.

Atomic simulations and electron microscopy reveal that this targeted reaction temporarily rewires the crystal surface, creating a pliable and 10-nanometer-thick skin of amorphous silicon oxycarbide. Instead of splintering under mechanical force, this glassy top layer behaves like a sacrificial molecular cushion, deforming smoothly under the diamond grit and nearly doubling the crystal’s crack-free cutting depth from 29 nanometers to 51 nanometers.

The resulting process slashes subsurface crystal defects to a depth of only 70 nanometers while entirely preventing hidden microcracks. By allowing chipmakers to bypass laborious intermediate polishing stages and jump straight from fast grinding to final finishing, the technique promises to streamline the manufacturing pipelines that supply semiconductors for power grids, electric trains, and electric cars.

The researchers note that the immediate next step is scaling the chemistry to run on commercial 8-inch wafer processing equipment and engineering closed-loop fluid recycling systems for large-scale industrial foundries.

International Journal of Extreme Manufacturing (IJEM, IF: 25.1 ) is devoted to publishing articles of the highest quality and significance to pushing the limits of scales, precision, performance and environments in manufacturing.

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International Journal of Extreme Manufacturing

10.1088/2631-7990/ae85e5

Atomic-scale damage control via thermochemical mechanical grinding induced amorphization of single crystal silicon carbide

24-Jul-2026

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Contact Information

Yue YAO
International Journal of Extreme Manufacturing
yueyao@ijem.org

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This article is based on a news release from International Journal of Extreme Manufacturing. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

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APA:
International Journal of Extreme Manufacturing. (2026, September 15). Turning friction heat into a chemical cushion to shape flawless semiconductor crystals. Brightsurf News. https://www.brightsurf.com/news/LRDY5MY8/turning-friction-heat-into-a-chemical-cushion-to-shape-flawless-semiconductor-crystals.html
MLA:
"Turning friction heat into a chemical cushion to shape flawless semiconductor crystals." Brightsurf News, Sep. 15 2026, https://www.brightsurf.com/news/LRDY5MY8/turning-friction-heat-into-a-chemical-cushion-to-shape-flawless-semiconductor-crystals.html.