Synthesis of MWCNT Forests with Alumina-Supported Fe2O3 Catalyst by Using a Floating Catalyst Chemical Vapor Deposition Technique

Author:

Shukrullah Shazia1ORCID,Naz Muhammad Y.1ORCID,Mohamed Norani M.2,Ibrahim Khalid A.34,Ghaffar Abdul1,AbdEl-Salam Nasser M.5

Affiliation:

1. Department of Physics, University of Agriculture, 38040 Faisalabad, Pakistan

2. Department of Fundamental and Applied Sciences, Universiti Teknologi PETRONAS, 32610, Malaysia

3. College of Engineering, Muzahimiyah Branch, King Saud University, Riyadh 11451, Saudi Arabia

4. Department of Chemical Engineering, Al-Hussein Bin Talal University, Ma’an, Jordan

5. Arriyadh Community College, King Saud University, 11437 Arriyadh, Saudi Arabia

Abstract

In this study, multiwalled CNT bundles were synthesized with an alumina-supported Fe2O3 catalyst by using a floating catalyst chemical vapor deposition (FCCVD) technique. The metal catalyst was synthesized by dispersing Fe2O3 on alumina support. Ethylene molecules were decomposed over different amounts of metal nanoparticles in a FCCVD reactor. The CVD temperature was elevated from 600°C to 1000°C. The large active surface area of the metal nanobuds promoted the decomposition of a carbon precursor and the fast growth of CNT bundles. Least dense bundles of varying heights were observed at lower CVD temperatures of 600°C and 700°C. At 800°C, CVD process conditions were found suitable for the fast decomposition of hydrocarbon. The relatively better yield of well-structured CNTs was obtained with a catalyst weight of 0.3 g at 800°C. Above 800°C, CNT forests start losing alignment and height. The forest density was also decreased at temperatures above the optimum. The elemental composition of CNT bundles revealed the presence of carbon, aluminium, oxygen, and iron in percentages of 91%, 0.76%, 8.2%, and 0.04%, respectively. A very small ID to IG ratio of 0.22 was calculated for CNTs grown under optimized conditions.

Funder

Deanship of Scientific Research, King Saud University

Publisher

Hindawi Limited

Subject

General Materials Science

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