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Force-induced electrocatalytic abrasives in-situ electrochemical mechanical polishing 4H–SiC wafers

抛光 材料科学 X射线光电子能谱 磨料 电化学 薄脆饼 化学机械平面化 钻石 极化(电化学) 压电 化学工程 催化作用 复合材料 阳极 分解 图层(电子) 钝化 水平扫描速率 电极 表层 纳米颗粒 机械化学 电压 冶金
作者
Xi Zhang,Jiapeng Chen,Yanan Peng,Zhenlin Jiang,Baoxiu Wang,Xue Li,Shusheng Xu,Jianxiu Su
出处
期刊:Journal of materials research and technology [Elsevier BV]
卷期号:43: 3076-3087
标识
DOI:10.1016/j.jmrt.2026.06.224
摘要

Aiming to overcome the long-standing trade-off between high material removal rate (MRR) and low surface damage in conventional chemical mechanical polishing (CMP) of 4H-SiC wafers, this study proposes an in-situ electrochemical mechanical polishing (in-situ ECMP) strategy using force-induced electrocatalytic abrasives (FIEA). The FIEA, composed of diamond, BaTiO 3 and binders, were fabricated via powder metallurgy, integrating diamond-based mechanical removal with BaTiO 3 -based piezoelectric catalytic functionality. Comparative polishing experiments were conducted under identical conditions, with traditional agglomerated diamond abrasives (AD) as the control. The results show that FIEA can stably generate a peak voltage of 2.25 V and a peak current of 210 nA under a polishing pressure of 31.03 kPa. Stress-induced piezoelectric polarization produces a localized interfacial potential difference when the positively polarized FIEA contacts 4H-SiC, thereby enhancing the equivalent anodic behavior of the 4H-SiC surface and inducing a transient equivalent electrochemical-like pathway at the abrasive/slurry/wafer interface. This significantly lowers the activation energy for surface oxidation and promotes Si-C bond rupture. Meanwhile, the piezocatalytic activity of FIEA accelerates the decomposition of H 2 O 2 and H 2 O, generating abundant hydroxyl radicals (·OH). X-ray photoelectron spectroscopy and UV-Vis analyses confirm that ·OH rapidly oxidizes the 4H-SiC surface to form a silica layer that is readily removed mechanically. As a result, the MRR achieved with FIEA reaches 105 nm/min, far exceeding the 28 nm/min obtained with AD, while the Sa is reduced to 4.5 nm with markedly fewer deep scratches. This work provides a promising abrasive design and mechanistic basis for high-efficiency, low-damage polishing of 4H-SiC wafers.

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