Alkali-Free Hydrothermally Reconstructed NiAl Layered Double Hydroxides for Catalytic Transesterification
Abstract
:1. Introduction
2. Results and Discussion
2.1. Catalyst Characterisation
2.2. Transesterification Activity
3. Experimental
3.1. Catalyst Synthesis
3.2. Catalyst Characterisation
3.3. Catalytic Activity
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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As-Prepared | Reconstructed | ||||||
---|---|---|---|---|---|---|---|
Nominal Ni:Al Atomic Ratio | Bulk Ni:Al Atomic Ratio a | Surface Ni:Al Atomic Ratio b | NiAl LDH Formula c | BET Surface Area d /m2·g−1 | BET Surface Area d /m2·g−1 | Base Site Loading e /mmol·g−1 | Base Site Loading /molecules·g−1 |
1.5:1 | 1.7:1 | 1.0 | [Ni0.6Al0.4(OH)2].(CO3)0.180.56H2O | 149 | 183 | 0.062 | 3.7 × 1019 |
3:1 | 2.7:1 | 2.6 | [Ni0.7Al0.3(OH)2].(CO3)0.140.58H2O | 236 | 207 | 0.072 | 4.4 × 1019 |
4:1 | 4.1:1 | 4.1 | [Ni0.8Al0.2(OH)2].(CO3)0.100.72H2O | 77 | 134 | 0.099 | 6.0 × 1019 |
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Tajuddin, N.A.; Manayil, J.C.; Lee, A.F.; Wilson, K. Alkali-Free Hydrothermally Reconstructed NiAl Layered Double Hydroxides for Catalytic Transesterification. Catalysts 2022, 12, 286. https://doi.org/10.3390/catal12030286
Tajuddin NA, Manayil JC, Lee AF, Wilson K. Alkali-Free Hydrothermally Reconstructed NiAl Layered Double Hydroxides for Catalytic Transesterification. Catalysts. 2022; 12(3):286. https://doi.org/10.3390/catal12030286
Chicago/Turabian StyleTajuddin, Nazrizawati A., Jinesh C. Manayil, Adam F. Lee, and Karen Wilson. 2022. "Alkali-Free Hydrothermally Reconstructed NiAl Layered Double Hydroxides for Catalytic Transesterification" Catalysts 12, no. 3: 286. https://doi.org/10.3390/catal12030286
APA StyleTajuddin, N. A., Manayil, J. C., Lee, A. F., & Wilson, K. (2022). Alkali-Free Hydrothermally Reconstructed NiAl Layered Double Hydroxides for Catalytic Transesterification. Catalysts, 12(3), 286. https://doi.org/10.3390/catal12030286