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5. Ramsahye NA, Maurin G, Bourrelly S, Llewellyn P, Loiseau T, Ferey G (2007) Charge
distribution in metal organic framework materials: transferability to a preliminary molecular
simulation study of the CO 2 adsorption in the MIL-53 (Al) system. Phys Chem Chem Phys
9(9):1059–1063
6. IEA (2019) Global energy and CO 2 status report 2019. https://www.iea.org/articles/globalco2-emissions-in-2019. Accessed Oct 2020
7. IPCC (2014) Climate change 2014: mitigation of climate change. Cambridge University Press,
Cambridge
8. United Nations Treaty Collection (2016) Amendment to the Montreal protocol on substances
that deplete the ozone layer. Kigali. https://treaties.un.org/Pages/ViewDetails.aspx?src=
IND&mtdsg_no=XXVII-2-f&chapter=27&clang=_en. Accessed Dec 2018
9. BP Energy Outlook 2017 Edition. https://www.bp.com/content/dam/bp/pdf/energy-econom
ics/energy-outlook-2017/bp-energy-outlook-2017.pdf. Accessed Dec 2018
10. Jaccarb M (2005) Sustainable fossil fuels: the unusual suspect in the quest for clean and
enduring energy. Cambridge University Press, Cambridge
11. Wang J, Huang L, Yang R, Zhang Z, Wu J, Gao Y et al (2014) Recent advances in solid
sorbents for CO 2 capture and new development trends. Energy Environ Sci 7(11):3478–3518
12. Vega LF (2010) CO 2 as a resource: from its capture to its use in industrial processes. Gas
natural foundation. Tech Guides Energy Environ 19. ISBN 978-84-614-1195-5
13. MacDowell N, Florin N, Buchard A, Hallett J, Galindo A, Jackson G et al (2010) An overview
of CO 2 capture technologies. Energy Environ Sci 3(11):1645–1669
14. Webley PA (2014) Adsorption technology for CO 2 separation and capture: a perspective.
Adsorption. 20(2):225–231
15. Bahamon D, Vega LF (2016) Systematic evaluation of materials for post-combustion CO 2
capture in a temperature swing adsorption process. Chem Eng J 284:438–447
16. Builes S, Roussel T, Ghimbeu CM, Parmentier J, Gadiou R, Vix-Guterl C et al (2011) Microporous carbon adsorbents with high CO 2 capacities for industrial applications. Phys Chem
Chem Phys 13(35):16063–16070
17. Luis P, Van der Bruggen B (2013) The role of membranes in post-combustion CO 2 capture.
Greenhouse Gases Sci Technol 3(5):318–337
18. Abanades JC, Anthony EJ, Wang J, Oakey JE (2005) Fluidized bed combustion systems
integrating CO 2 capture with CaO. Environ Sci Technol 39(8):2861–2866
19. Metz B, Davidson O, de Conick H, Loos M, Meyer L (2005) IPCC. Cambridge University
Press, UK. https://www.ipcc.ch/report/carbon-dioxide-capture-and-storage/. Accessed Dec
2018
20. Graziosi F, Arduini J, Furlani F, Giostra U, Cristofanelli P, Fang X et al (2017) European
emissions of the powerful greenhouse gases hydrofluorocarbons inferred from atmospheric
measurements and their comparison with annual national reports to UNFCCC. Atmos Environ
158:85–97
21. Liu Z, Qiao J, Niu Z, Wang Q (2012) Natural supramolecular building blocks: from virus coat
proteins to viral nanoparticles. Chem Soc Rev 41(18):6178–6194
22. Huck JM, Lin L-C, Berger AH, Shahrak MN, Martin RL, Bhown AS et al (2014) Evaluating
different classes of porous materials for carbon capture. Energy Environ Sci 7(12):4132–4146
23. Goetzler W, Sutherland T, Rassi M, Burgos J (2014) Research & development roadmap for
next-generation low global warming potential refrigerants. Office of Energy Efficiency and
Renewable Energy, US Department of Energy
24. Mota-Babiloni A, Navarro-Esbrí J, Barragán-Cervera Á, Molés F, Peris B (2015) Analysis
based on EU regulation no 517/2014 of new HFC/HFO mixtures as alternatives of high GWP
refrigerants in refrigeration and HVAC systems. Int J Refrig 52:21–31
25. Rajendran R (2016) Refrigerant and energy regulations update. Presented at the E360 Forum.
Tucson
26. Qi Y, Zhang H, Zhao W, Liu Y, Liu X (2014) International refrigeration and air conditioning
conference. Purdue University
L. F. Vega et al.
5. Ramsahye NA, Maurin G, Bourrelly S, Llewellyn P, Loiseau T, Ferey G (2007) Charge
distribution in metal organic framework materials: transferability to a preliminary molecular
simulation study of the CO 2 adsorption in the MIL-53 (Al) system. Phys Chem Chem Phys
9(9):1059–1063
6. IEA (2019) Global energy and CO 2 status report 2019. https://www.iea.org/articles/globalco2-emissions-in-2019. Accessed Oct 2020
7. IPCC (2014) Climate change 2014: mitigation of climate change. Cambridge University Press,
Cambridge
8. United Nations Treaty Collection (2016) Amendment to the Montreal protocol on substances
that deplete the ozone layer. Kigali. https://treaties.un.org/Pages/ViewDetails.aspx?src=
IND&mtdsg_no=XXVII-2-f&chapter=27&clang=_en. Accessed Dec 2018
9. BP Energy Outlook 2017 Edition. https://www.bp.com/content/dam/bp/pdf/energy-econom
ics/energy-outlook-2017/bp-energy-outlook-2017.pdf. Accessed Dec 2018
10. Jaccarb M (2005) Sustainable fossil fuels: the unusual suspect in the quest for clean and
enduring energy. Cambridge University Press, Cambridge
11. Wang J, Huang L, Yang R, Zhang Z, Wu J, Gao Y et al (2014) Recent advances in solid
sorbents for CO 2 capture and new development trends. Energy Environ Sci 7(11):3478–3518
12. Vega LF (2010) CO 2 as a resource: from its capture to its use in industrial processes. Gas
natural foundation. Tech Guides Energy Environ 19. ISBN 978-84-614-1195-5
13. MacDowell N, Florin N, Buchard A, Hallett J, Galindo A, Jackson G et al (2010) An overview
of CO 2 capture technologies. Energy Environ Sci 3(11):1645–1669
14. Webley PA (2014) Adsorption technology for CO 2 separation and capture: a perspective.
Adsorption. 20(2):225–231
15. Bahamon D, Vega LF (2016) Systematic evaluation of materials for post-combustion CO 2
capture in a temperature swing adsorption process. Chem Eng J 284:438–447
16. Builes S, Roussel T, Ghimbeu CM, Parmentier J, Gadiou R, Vix-Guterl C et al (2011) Microporous carbon adsorbents with high CO 2 capacities for industrial applications. Phys Chem
Chem Phys 13(35):16063–16070
17. Luis P, Van der Bruggen B (2013) The role of membranes in post-combustion CO 2 capture.
Greenhouse Gases Sci Technol 3(5):318–337
18. Abanades JC, Anthony EJ, Wang J, Oakey JE (2005) Fluidized bed combustion systems
integrating CO 2 capture with CaO. Environ Sci Technol 39(8):2861–2866
19. Metz B, Davidson O, de Conick H, Loos M, Meyer L (2005) IPCC. Cambridge University
Press, UK. https://www.ipcc.ch/report/carbon-dioxide-capture-and-storage/. Accessed Dec
2018
20. Graziosi F, Arduini J, Furlani F, Giostra U, Cristofanelli P, Fang X et al (2017) European
emissions of the powerful greenhouse gases hydrofluorocarbons inferred from atmospheric
measurements and their comparison with annual national reports to UNFCCC. Atmos Environ
158:85–97
21. Liu Z, Qiao J, Niu Z, Wang Q (2012) Natural supramolecular building blocks: from virus coat
proteins to viral nanoparticles. Chem Soc Rev 41(18):6178–6194
22. Huck JM, Lin L-C, Berger AH, Shahrak MN, Martin RL, Bhown AS et al (2014) Evaluating
different classes of porous materials for carbon capture. Energy Environ Sci 7(12):4132–4146
23. Goetzler W, Sutherland T, Rassi M, Burgos J (2014) Research & development roadmap for
next-generation low global warming potential refrigerants. Office of Energy Efficiency and
Renewable Energy, US Department of Energy
24. Mota-Babiloni A, Navarro-Esbrí J, Barragán-Cervera Á, Molés F, Peris B (2015) Analysis
based on EU regulation no 517/2014 of new HFC/HFO mixtures as alternatives of high GWP
refrigerants in refrigeration and HVAC systems. Int J Refrig 52:21–31
25. Rajendran R (2016) Refrigerant and energy regulations update. Presented at the E360 Forum.
Tucson
26. Qi Y, Zhang H, Zhao W, Liu Y, Liu X (2014) International refrigeration and air conditioning
conference. Purdue University
