Functional Composite Modification of Cubic CeO2 Nanoparticles for Enhanced Dispersion and Polishing

Abstract To address agglomeration, poor dispersion stability, and the trade-off between removal rate and surface quality of nano-CeO2 abrasives in chemical mechanical polishing (CMP), this work focuses on cubic CeO2 nanoparticles (C−CeO2) with exposed (100) facets and systematically compares sodium dodecyl sulfate (SDS)-based composite modifications with 3-glycidyloxypropyltrimethoxysilane (GPTMS), polyvinyl alcohol (PVA), oleic acid (OA), and 2-methylpiperazine (2 MP). Comprehensive characterizations were used to elucidate the structure−property relationships between functional groups, interfacial interactions, and polishing performance. Results show that SDS-based composite modification suppresses nanoparticle agglomeration through synergistic electrostatic and steric effects. Among the four systems, C−CeO2-SDS-GPTMS exhibits the best dispersion, wettability, and Ce3+ retention due to stable Si−O−Ce bonds, achieving a material removal rate (MRR) of 3230 Å/min (∼52% increase) and an ultra-low Sq of 0.0321 nm on a 5 × 5 μm SiO2 dielectric layer. The PVA system balances high removal rate and low damage; OA shows stable adsorption but moderate dispersibility, whereas 2 MP exhibits the poorest performance because of weak coordination and severe hydrophobic agglomeration. Overall, the effectiveness of composite modification depends strongly on interfacial bonding strength and hydrophilic-hydrophobic balance. This study provides a systematic theoretical and experimental foundation for designing high-performance nano-CeO2-based CMP abrasives.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-09-30
DOI
https://doi.org/10.1021/acsanm.6c03632
Primary Topic
Advanced Surface Polishing Techniques
Type
article
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article

Functional Composite Modification of Cubic CeO2 Nanoparticles for Enhanced Dispersion and Polishing

李鹤岐, Yunhui Shi, Lulu Wang, Yao Xu et al.
ACS Applied Nano Materials
Advanced Surface Polishing Techniques
article

Functional Composite Modification of Cubic CeO2 Nanoparticles for Enhanced Dispersion and Polishing

李鹤岐, Yunhui Shi, Lulu Wang, Yao Xu, Yongxin Wang, Long Zheng, Chang Li, Boyao Liu
article en

Abstract

Abstract To address agglomeration, poor dispersion stability, and the trade-off between removal rate and surface quality of nano-CeO2 abrasives in chemical mechanical polishing (CMP), this work focuses on cubic CeO2 nanoparticles (C−CeO2) with exposed (100) facets and systematically compares sodium dodecyl sulfate (SDS)-based composite modifications with 3-glycidyloxypropyltrimethoxysilane (GPTMS), polyvinyl alcohol (PVA), oleic acid (OA), and 2-methylpiperazine (2 MP). Comprehensive characterizations were used to elucidate the structure−property relationships between functional groups, interfacial interactions, and polishing performance. Results show that SDS-based composite modification suppresses nanoparticle agglomeration through synergistic electrostatic and steric effects. Among the four systems, C−CeO2-SDS-GPTMS exhibits the best dispersion, wettability, and Ce3+ retention due to stable Si−O−Ce bonds, achieving a material removal rate (MRR) of 3230 Å/min (∼52% increase) and an ultra-low Sq of 0.0321 nm on a 5 × 5 μm SiO2 dielectric layer. The PVA system balances high removal rate and low damage; OA shows stable adsorption but moderate dispersibility, whereas 2 MP exhibits the poorest performance because of weak coordination and severe hydrophobic agglomeration. Overall, the effectiveness of composite modification depends strongly on interfacial bonding strength and hydrophilic-hydrophobic balance. This study provides a systematic theoretical and experimental foundation for designing high-performance nano-CeO2-based CMP abrasives.

ACS Applied Nano Materials
Hebei University of Technology (CN)
No poverty
Openalex Percentile: Top 22%
Advanced Surface Polishing Techniques
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Functional Composite Modification of Cubic CeO2 Nanoparticles for Enhanced Dispersion and Polishing — 李鹤岐, Yunhui Shi, et al. · ACS Applied Nano Materials (2026) | TGRS Research Map | TGRS