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Review on the Chemical Conversion of Carbon Dioxide with Aziridineby Using Catalyts: Environmentally Freiendly Accesses to Cyclic Carbamates

Received: 21 October 2021    Accepted: 17 November 2021    Published: 31 December 2021
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Abstract

Carbon dioxide produced by means of human matters to do is one of the essential contributions accountable for the greenhouse effect, which is enhancing the Earth’s climate. From the viewpoint of green chemistry and sustainable development, it is of exquisite magnitude to synthesize chemical substances from CO2 as C1 source with the aid of C-N bond formation. Therefore, post-combustion CO2 catch and its conversion into excessive value-added chemical substances are crucial components of today’s inexperienced industry. Chemical fixation of carbon dioxide (CO2), which is much less high-priced and renewable carbon source, is turning into greater and greater important. The improvement of each new reactions and new catalysts is wished to overcome the kinetic and thermodynamic balance of CO2. Organic and steel catalysts with unique and high-quality endeavor and selectivity have been developed for a wide variety chemical conversions of CO2. On the different hand, carbon dioxide is a ubiquitous, cheap, abundant, non-toxic, non-flammable and renewable C1 source. Among CO2 usages, this evaluate pursuits to summarize and discuss the advances in the response of CO2, in the synthesis of cyclic carbonates, carbamates, and urea.

Published in Science Journal of Chemistry (Volume 9, Issue 6)
DOI 10.11648/j.sjc.20210906.16
Page(s) 171-179
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Aziridine, Carbon Dioxide, Cyclic Carbamate, Ionic Liquids

References
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Cite This Article
  • APA Style

    Teshome Mender, Meselu Eskezia. (2021). Review on the Chemical Conversion of Carbon Dioxide with Aziridineby Using Catalyts: Environmentally Freiendly Accesses to Cyclic Carbamates. Science Journal of Chemistry, 9(6), 171-179. https://doi.org/10.11648/j.sjc.20210906.16

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    ACS Style

    Teshome Mender; Meselu Eskezia. Review on the Chemical Conversion of Carbon Dioxide with Aziridineby Using Catalyts: Environmentally Freiendly Accesses to Cyclic Carbamates. Sci. J. Chem. 2021, 9(6), 171-179. doi: 10.11648/j.sjc.20210906.16

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    AMA Style

    Teshome Mender, Meselu Eskezia. Review on the Chemical Conversion of Carbon Dioxide with Aziridineby Using Catalyts: Environmentally Freiendly Accesses to Cyclic Carbamates. Sci J Chem. 2021;9(6):171-179. doi: 10.11648/j.sjc.20210906.16

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  • @article{10.11648/j.sjc.20210906.16,
      author = {Teshome Mender and Meselu Eskezia},
      title = {Review on the Chemical Conversion of Carbon Dioxide with Aziridineby Using Catalyts: Environmentally Freiendly Accesses to Cyclic Carbamates},
      journal = {Science Journal of Chemistry},
      volume = {9},
      number = {6},
      pages = {171-179},
      doi = {10.11648/j.sjc.20210906.16},
      url = {https://doi.org/10.11648/j.sjc.20210906.16},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.sjc.20210906.16},
      abstract = {Carbon dioxide produced by means of human matters to do is one of the essential contributions accountable for the greenhouse effect, which is enhancing the Earth’s climate. From the viewpoint of green chemistry and sustainable development, it is of exquisite magnitude to synthesize chemical substances from CO2 as C1 source with the aid of C-N bond formation. Therefore, post-combustion CO2 catch and its conversion into excessive value-added chemical substances are crucial components of today’s inexperienced industry. Chemical fixation of carbon dioxide (CO2), which is much less high-priced and renewable carbon source, is turning into greater and greater important. The improvement of each new reactions and new catalysts is wished to overcome the kinetic and thermodynamic balance of CO2. Organic and steel catalysts with unique and high-quality endeavor and selectivity have been developed for a wide variety chemical conversions of CO2. On the different hand, carbon dioxide is a ubiquitous, cheap, abundant, non-toxic, non-flammable and renewable C1 source. Among CO2 usages, this evaluate pursuits to summarize and discuss the advances in the response of CO2, in the synthesis of cyclic carbonates, carbamates, and urea.},
     year = {2021}
    }
    

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    AU  - Teshome Mender
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    JF  - Science Journal of Chemistry
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    AB  - Carbon dioxide produced by means of human matters to do is one of the essential contributions accountable for the greenhouse effect, which is enhancing the Earth’s climate. From the viewpoint of green chemistry and sustainable development, it is of exquisite magnitude to synthesize chemical substances from CO2 as C1 source with the aid of C-N bond formation. Therefore, post-combustion CO2 catch and its conversion into excessive value-added chemical substances are crucial components of today’s inexperienced industry. Chemical fixation of carbon dioxide (CO2), which is much less high-priced and renewable carbon source, is turning into greater and greater important. The improvement of each new reactions and new catalysts is wished to overcome the kinetic and thermodynamic balance of CO2. Organic and steel catalysts with unique and high-quality endeavor and selectivity have been developed for a wide variety chemical conversions of CO2. On the different hand, carbon dioxide is a ubiquitous, cheap, abundant, non-toxic, non-flammable and renewable C1 source. Among CO2 usages, this evaluate pursuits to summarize and discuss the advances in the response of CO2, in the synthesis of cyclic carbonates, carbamates, and urea.
    VL  - 9
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Author Information
  • Department of Chemistry, College of Natural and Computational Science, Bonga University, Bonga, Ethiopia

  • Department of Chemistry, College of Natural and Computational Science, Oda Bultum University, Chiro, Ethiopia

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