Assistant Professor, Department of Chemistry, DAV Degree College, Kanpur
JournalPIJST
Volume / Issue1 / 9
Pages31–47
Published30 Sep 2024
Paper IDPIJST19S24004
Views / Downloads1 / 0
Article summary
Abstract
The area of chemistry that studies carbon and its compounds is called organic chemistry. It is essential to both medicine and biology. It is known that carbon can form an infinite number of compounds. In ancient times, the Romans and Egyptians used organic chemicals as dyes, medicines, and poisons derived from natural sources, but the chemical makeup of these substances was unknown. Carbon atoms can form chains, branches, and crosslinks, or rings of all sizes. The 16th century saw the development of analytical techniques for determining the elemental composition and the isolation of pure organic compounds from nature. A compound made entirely of carbon and hydrogen is called a hydrocarbon.
Citation record
How to cite this article
Sandhya Srivastava (2024). Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis. Procedure International Journal of Science and Technology, 1(9), 31–47. https://doi.org/10.62796/pijst.2024v1i9004
Sandhya Srivastava. “Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis.” Procedure International Journal of Science and Technology, vol. 1, no. 9, 2024, pp. 31–47. https://doi.org/10.62796/pijst.2024v1i9004
Sandhya Srivastava. “Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis.” Procedure International Journal of Science and Technology 1, no. 9 (2024): 31–47. https://doi.org/10.62796/pijst.2024v1i9004
Sandhya Srivastava (2024) ‘Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis’, Procedure International Journal of Science and Technology, 1(9), pp. 31–47. Available at: https://doi.org/10.62796/pijst.2024v1i9004.
Sandhya Srivastava, “Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis,” Procedure International Journal of Science and Technology, vol. 1, no. 9, pp. 31–47, 2024. https://doi.org/10.62796/pijst.2024v1i9004.
Sandhya Srivastava. Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis. Procedure International Journal of Science and Technology. 2024;1(9):31–47. https://doi.org/10.62796/pijst.2024v1i9004.
Sandhya Srivastava. Advancements in Catalytic Methods, Green Chemistry, and Flow Chemistry for Sustainable and Efficient Organic Synthesis. Procedure International Journal of Science and Technology 2024, 1 (9), 31–47. https://doi.org/10.62796/pijst.2024v1i9004.
No separate funding declaration was available in the verified source record; the journal policy applies.
Conflict of Interest
No separate conflict-of-interest declaration was available in the verified source record; the journal policy applies.
Ethical Approval
No separate ethical approval statement was available in the verified source record; the article and journal policies apply.
Data Availability
No separate data-availability statement was available in the verified source record; contact the author(s) or editorial office where appropriate.
Author Contributions
No separate author-contribution statement was available in the verified source record; authorship follows the published article record.
AI-use Declaration
No separate AI-use declaration was available in the verified source record; the journal AI-use policy applies.
Editorial record
Publisher's Note
The views, opinions and conclusions expressed in this article are those of the author(s). Publication does not imply endorsement by the journal, editorial board or publisher. Responsibility for accuracy, originality and integrity remains with the author(s). Readers should independently evaluate and verify information before application or citation.
Alper, H., et al. (2016). “Transition metal-catalyzed reactions: Recent advancements and applications.” Nature Chemistry, 8(6), 579-591.
Anastas, P. T., & Warner, J. C. (1998). Green Chemistry: Theory and Practice. Oxford University Press.
Beller, M., et al. (2014). “Catalysis in organic synthesis: Transition metals and photocatalysis.” Chemical Reviews, 114(15), 7465-7503.
Alvarez, P., et al. (2022). “Solvent-free organic reactions: Catalytic methods and applications in green chemistry.” Green Chemistry, 24(4), 1089-1104.
Bertolasi, V., et al. (2020). “Solvent-free catalytic reactions: Opportunities and challenges in organic synthesis.” Chemical Society Reviews, 49(6), 1892-1913.
Hollingworth, C., et al. (2021). “Advances in palladium-catalyzed organic synthesis: From reaction development to process optimization.” Nature Reviews Chemistry, 5(2), 112-126.
López, S. A., et al. (2021). “Flow chemistry for pharmaceutical production: A review of the state of the art and future perspectives.” Chemical Engineering Science, 244, 115106.
Mizuno, N., et al. (2019). “Nickel catalysis in organic synthesis: New perspectives for Suzuki-Miyaura coupling and beyond.” Nature Reviews Chemistry, 3(3), 191-205.
Nitsche, L., et al. (2021). “Biocatalysis: The future of organic synthesis.” Trends in Biotechnology, 39(4), 410-423.
Patterson, D. E., et al. (2022). “Microfluidic systems in organic synthesis: From small-scale to large-scale continuous flow chemistry.” Nature Materials, 21(7), 859-872.
Wang, Y., et al. (2021). “Photocatalytic methods in organic synthesis: Mechanisms, challenges, and applications.” Nature Reviews Chemistry, 5(7), 453-465.
Yamamoto, T., & Ishihara, K. (2020). “Advances in transition metalcatalyzed cross-coupling reactions: Recent progress and future directions.” Chemical Reviews, 120(13), 7253-7292.
McDonald, S. R., et al. (2020). “Computational chemistry and mechanistic studies in organic synthesis: A tool for the design of new catalysts.” Nature Catalysis, 3(5), 330-341.
Buchwald, S. L., et al. (2021). “Organocatalysis: From discovery to application.” Nature Chemistry, 13(1), 1-9. (Online).
Seregin, I. V., & Zhuk, I. A. (2007). Mechanisms of C-H Activation in Organic Chemistry. Chemical Reviews, 107(2), 263-315.
McMullin, C. L., Delaude, L., & Catlow, C. R. A. (2020). TransitionMetal-Catalyzed C-H Activation: Recent Advances and Mechanistic Insights. Nature Reviews Chemistry, 4(3), 153-171.
Chatani, N., Seki, T., & Kawanami, S. (2017). Recent Advances in Palladiumand Rhodium-Catalyzed C-H Activation. Chemical Reviews, 117(9), 7747-7793.
Riener, M., Traxler, L., & Höfler, G. (2020). Non-Metal-Catalyzed CH Activation: New Trends Towards Greener Alternatives. Green Chemistry, 22(1), 7-20.
Enders, D., et al. (2006). “Mechanistic studies in organocatalysis.” Angewandte Chemie International Edition, 45(5), 646-648.
Dalko, P. I., et al. (2004). “The design of bifunctional catalysts for asymmetric synthesis.” Chemical Reviews, 104(5), 2061-2082.
Jørgensen, K. A. (2000). “Asymmetric catalysis: A perspective on bifunctional amines and thioureas.” Chemical Reviews, 100(6), 1717-1752.
Ragan, J. A., et al. (2009). “Bifunctional amine catalysis and its applications to asymmetric transformations.” Journal of the American Chemical Society, 131(8), 3141-3147.
Mackey, S. D., et al. (2014). “Organocatalysis: Mechanisms and selectivity in small organic molecules.” ChemCatChem, 6(3), 705711.
Walsh, C. (2018). “Advances in organic chemistry and its impact on drug development.” Nature Reviews Drug Discovery, 17(5), 335-354.
Matsumoto, Y., et al. (2019). “Targeted drug delivery systems: Organic molecules in targeted therapies.” Journal of Controlled Release, 308, 204-212.
Sachs, D. L., et al. (2019). “Synthetic antibodies and biologic drugs: Advances in disease treatment.” Nature Biotechnology, 37(2), 145156.
Xia, Y., et al. (2017). “Organic electronics: A new frontier in material science and electronics.” Nature Materials, 16(6), 616-628.
Friend, R. H., et al. (2009). “Organic light-emitting diodes (OLEDs): Advances and applications.” Nature Materials, 8(3), 215-224.
Zhang, H., et al. (2019). “Advances in organic semiconductors for photovoltaic applications.” Nature Materials, 18(1), 1-8.
Wang, Y., et al. (2019). “Energy storage and conversion: The role of organic chemistry in developing sustainable technologies.” Nature Energy, 4(2), 1-12. (Online).
Bakker, M., et al. (2018). “Organic batteries: Development and potential for energy storage solutions.” Journal of Power Sources, 379, 157-165.
Moser, J., et al. (2020). “Organic supercapacitors: Advances in energy storage and flexibility.” Nature Communications, 11(1), 4254.
Tang, C. W., et al. (2018). “Organic photovoltaics: Materials, performance, and prospects for commercialization.” Nature Materials, 17(3), 233-240.
Noyori, R., & Kitamura, M. (2003). Asymmetric catalysis: The next generation. Nature Reviews Chemistry, 7(12), 947–953.
MacMillan, D. W. C. (2008). The advent of organocatalysis. Nature, 455(7211), 304–308.