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February 26, 2026Materials0 citationsOpen Access

Tribological Behavior and Material Removal Mechanisms in Sapphire Lapping Using HFCVD Diamond-Coated Tools

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WFWei FengXSX S SunSZShuai Zhou

Key Points

  • To explore the tribological behavior and material removal mechanisms of diamond-coated tools during sapphire lapping.
  • Fabricated diamond coatings using hot-filament chemical-vapor deposition (HFCVD) with different surface textures.
  • Analyzed surface morphology through scanning electron microscopy (SEM) and surface roughness measurements.
  • Investigated tribological behavior during sapphire lapping with diamond-coated tools.
  • Spherical diamond coating achieved a surface finish of Ra 0.22 μm.
  • Maximum material removal rate was 24.3 μm/min with specific coating characteristics.
  • Three morphological material removal models were established based on experimental findings.

Abstract

Diamond coatings with three distinct surface textures, namely spherical, pyramidal, and prismatic morphologies, were fabricated using the hot-filament chemical-vapor deposition (HFCVD) method. Scanning electron microscopy (SEM) was employed to analyze the surface morphological characteristics and differences among the coatings. Raman spectroscopic analysis further confirmed that all three diamond films exhibited excellent deposition uniformity and high crystalline quality. A three-dimensional optical microscopy system was used to measure the surface roughness values, which were determined to be Ra 0.423 μm, Ra 0.515 μm, and Ra 0.809 μm, respectively. An HFCVD diamond-coated tool was innovatively employed for the lapping of sapphire wafers, enabling a systematic investigation of the tribological behavior during the lapping process. Based on the experimental results, three morphological material removal models were established. The study demonstrates that the spherical diamond coating achieves a superior surface finish (Ra 0.22 μm) due to its continuous multi-point contact geometry, governed by the agglomerated nanocrystalline structure. Sample 3 had the highest removal rate of 24.3 μm/min. This is related to its surface morphology characteristics and is also due to the two-body contact between the diamond-coated tool and sapphire, offering a high-efficiency alternative for precision machining.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/699f95951bc9fecf3dab3904https://doi.org/10.3390/ma19050831
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