Abstract
Binary metal oxide nanoparticles (biMO-NPs) combining transition and main-group metals with well-organized atomic architectures have unique potential as robust and economical heterogeneous catalysts. Herein, metal oxide nanoparticles (CoAlxOy) using cobalt and aluminum were synthesized, and their structure, morphology, and chemical composition were investigated using various characterization techniques. The biMO-NPs, which had a Gaussian-type size distribution (∼6 nm), were assembled on plain silicon substrates modified chemically with linker molecules bearing suitable end groups. Surface analysis revealed an ordered, uniform, close-packed arrangement of biMO-NPs forming a monolayer architecture with nanoscale thickness (∼12 nm), high surface uniformity, and negligible defects. The nanoparticle monolayer film (NP-MF) was employed as a catalyst to grow carbon nanotube (CNT) forests via the thermal chemical vapor deposition (CVD) method, similar to those grown from catalyst thin films deposited by physical vapor deposition. Structural characterization confirmed the growth of a dense, uniform, high-quality vertically aligned carbon nanotube (VA-CNT) forest with a length of ∼125 µm, which is comparable to the VA-CNTs grown from expensive thin films. Thus, CNT growth was successfully catalyzed by the biMO-NPs, highlighting a simple and inexpensive alternative for catalyst deposition. In this innovative wet-chemistry approach, the catalyst and catalyst support are combined within a single nanoparticle before NP-MF assembly. Interestingly, this approach provides a scalable and cost-effective pathway for CNT growth, eliminating the need for expensive thin deposition techniques.
| Original language | English |
|---|---|
| Number of pages | 14 |
| Journal | Small |
| DOIs | |
| State | Accepted/In press - 2026 |
Bibliographical note
Publisher Copyright:© 2026 Wiley-VCH GmbH.
Funding
This material is based on work supported by the National Science Foundation under Award No. DMR-2334039. B.R. is grateful to "The University of Cincinnati Office of Research University Research Council (URC) Graduate Student Stipend and Research Cost Program for Faculty-Student Collaborations." R.T.P. and B.N. are grateful for the support from the National Science Foundation (DMR-2216048). We thank the U.S. Department of Energy under DE-SC0022315 (BSG) and the University of Kentucky Materials Science Research Priority Area (IW) for partial salary support. STEM-EDS imaging research conducted as part of a user project at the Center for Nanophase Materials Sciences (CNMS), which is a US Department of Energy, Office of Science User Facility at Oak Ridge National Laboratory. We also thank the Advanced Material Characterization Center at the University of Cincinnati for characterization facilities and Necati Kaval for instrumental support.
| Funders | Funder number |
|---|---|
| US Department of Energy, Office of Science | |
| National Science Foundation | DMR-2334039, DMR-2216048 |
Keywords
- carbon nanotubes
- catalytic activity
- monolayer
- nanoparticles
- synergistic effect
ASJC Scopus subject areas
- Biotechnology
- General Chemistry
- Biomaterials
- General Materials Science
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