CO2 to Value-Added Chemicals: Synthesis and Performance of Mono- and Bimetallic Nickel–Cobalt Nanofiber Catalysts

Author:

Schossig John1,Gandotra Akash2,Arizapana Kevin1,Weber Daniel2,Wildy Michael1,Wei Wanying1,Xu Kai1,Yu Lei1,Chimenti Robert3ORCID,Mantawy Islam4,Hyun Dong Choon5,Chen Wenshuai6,Zhang Cheng2ORCID,Lu Ping1ORCID

Affiliation:

1. Department of Chemistry and Biochemistry, Rowan University, Glassboro, NJ 08028, USA

2. Chemistry Department, Long Island University (Post), Brookville, NY 11548, USA

3. Department of Physics and Astronomy, Rowan University, Glassboro, NJ 08028, USA

4. Department of Civil and Environmental Engineering, Glassboro, NJ 08028, USA

5. Department of Polymer Science and Engineering, Kyungpook National University, Daegu 41566, Republic of Korea

6. Key Laboratory of Bio-Based Material Science and Technology, Ministry of Education, Northeast Forestry University, Harbin 150040, China

Abstract

In an epoch dominated by escalating concerns over climate change and looming energy crises, the imperative to design highly efficient catalysts that can facilitate the sequestration and transformation of carbon dioxide (CO2) into beneficial chemicals is paramount. This research presents the successful synthesis of nanofiber catalysts, incorporating monometallic nickel (Ni) and cobalt (Co) and their bimetallic blend, NiCo, via a facile electrospinning technique, with precise control over the Ni/Co molar ratios. Application of an array of advanced analytical methods, including SEM, TGA–DSC, FTIR-ATR, XRD, Raman, XRF, and ICP-MS, validated the effective integration and homogeneous distribution of active Ni/Co catalysts within the nanofibers. The catalytic performance of these mono- and bimetallic Ni/Co nanofiber catalysts was systematically examined under ambient pressure conditions for CO2 hydrogenation reactions. The bimetallic NiCo nanofiber catalysts, specifically with a Ni/Co molar ratio of 1:2, and thermally treated at 1050 °C, demonstrated a high CO selectivity (98.5%) and a marked increase in CO2 conversion rate—up to 16.7 times that of monometallic Ni nanofiber catalyst and 10.8 times that of the monometallic Co nanofiber catalyst. This significant enhancement in catalytic performance is attributed to the improved accessibility of active sites, minimized particle size, and the strong Ni–Co–C interactions within these nanofiber structures. These nanofiber catalysts offer a unique model system that illuminates the fundamental aspects of supported catalysis and accentuates its crucial role in addressing pressing environmental challenges.

Funder

National Science Foundation

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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