154
Park SW, Joo OS, Jung KD, Kim H, Han SH (2001) Development of ZnO/Al 2 O 3 catalyst for
reverse-water-gas-shift reaction of CAMERE (carbon dioxide hydrogenation to form methanol via a reverse-water-gas-shift reaction) process. Appl Catal A Gen 211:81–90. https://doi.
org/10.1016/S0926-860X(00)00840-1
Park N, Park M-J, Lee Y-J, Ha K-S, Jun K-W (2014) Kinetic modeling of methanol synthesis over
commercial catalysts based on three-site adsorption. Fuel Proc Technol 125:139–147. https://
doi.org/10.1016/j.fuproc.2014.03.041
Pham MD, Siang TJ, Vo D-VN, Phan TS, Ridart C, Nzihou A, Grouset D (2018) Chapter 4: hydrogen production from biogas reforming: an overview of steam reforming, dry reforming, dual
reforming, and tri-reforming of methane. In: Azzaro-Pantel C (ed) Hydrogen supply chain:
design, deployment and operation. Academic Press, pp 111–166. https://doi.org/10.1016/
B978-0-12-811197-0.00004-X
Pokrovski K, Bell A (2006) Effect of dopants on the activity of Cu/M 0.3 Zr 0.7 O 2 (M = Ce, Mn,
and Pr) for CO hydrogenation to methanol. J Catal 244(1):43–51. https://doi.org/10.1016/j.
jcat.2006.07.031
Portha JF, Parkhomenko K, Kobl K, Roger AC, Arab S, Commenge JM, Falk L (2017) Kinetics of
methanol synthesis from carbon dioxide hydrogenation over copper–zinc oxide catalysts. Ind
Eng Chem Res 56(45):13133–13145. https://doi.org/10.1021/acs.iecr.7b01323
Prieto G, de Jong KP, de Jongh PE (2013) Towards ‘greener’ catalyst manufacture: reduction of
wastewater from the preparation of Cu/ZnO/Al 2 O 3 methanol synthesis catalysts. Catal Today
215:142–151. https://doi.org/10.1016/j.cattod.2013.03.033
Puga AV (2016) Light-promoted hydrogenation of carbon dioxide – an overview. Top Catal 59(15–
16):1268–1278. https://doi.org/10.1007/s11244-016-0658-z
Quadrelli EA, Centi G, Duplan J-L, Perathoner S (2011) Carbon dioxide recycling: emerging
large-scale technologies with industrial potential. ChemSusChem 4:1194–1215. https://doi.
org/10.1002/cssc.201100473
Rafiee A, Khalilpour KR, Milani D, Panahie M (2018) Trends in CO 2 conversion and utilization:
a review from process systems perspective. J Environ Chem Eng 6:5771–5794. https://doi.
org/10.1016/j.jece.2018.08.065
Rezaul Karim KM, Ong HR, Abdullah H, Yousuf A, Cheng CK, Rahman Khan MM (2018)
Photoelectrochemical reduction of carbon dioxide to methanol on p-type CuFe 2 O 4 under visible light irradiation. Int J Hydrogen Ener 43(39):18185–18193. https://doi.org/10.1016/j.
ijhydene.2018.07.174
Rezayee NM, Huff CA, Sanford MS (2015) Tandem amine and ruthenium-catalyzed hydrogenation
of CO 2 to methanol. J Am Chem Soc 137(3):1028–1031. https://doi.org/10.1021/ja511329m
Richard AR, Fan M (2017) Low-pressure hydrogenation of CO 2 to CH 3 OH using Ni-In-Al/SiO 2
catalyst synthesized via a phyllosilicate precursor. ACS Catal 7(9):5679–5692. https://doi.
org/10.1021/acscatal.7b00848
Riduan SN, Zhang Y, Ying JY (2009) Conversion of carbon dioxide into methanol with silanes
over N-heterocyclic carbene catalysts. Angew Chem Int Ed 48(18):3322–3325. https://doi.
org/10.1002/anie.200806058
Ro I, Liu Y, Ball MR, Jackson DHK, Chada JP, Sener C, Kuech TF, Madon RJ, Huber GW,
Dumesic JA (2016) Role of the Cu-ZrO 2 interfacial sites for conversion of ethanol to ethyl
acetate and synthesis of methanol from CO 2 and H 2 . ACS Catal 6(10):7040–7050. https://doi.
org/10.1021/acscatal.6b01805
Saito M (1998) R&D activities in Japan on methanol synthesis from CO 2 and H 2 . Catal Surv Jpn
2(2):175–184. https://doi.org/10.1023/A:1019082525994
Saito M, Fujitani T, Takeuchi M, Watanabe T (1996) Development of copper/zinc oxide-based
multicomponent catalysts for methanol synthesis from carbon dioxide and hydrogen. Appl
Catal A Gen 138(2):311–318. https://doi.org/10.1016/0926-860X(95)00305-3
Saito M, Takeuchi M, Watanabe T, Toyir J, Luo S, Wu J (1997) Methanol synthesis from CO 2 and
H 2 over a Cu/ZnO-based multicomponent catalyst. Energy Convers Manag 38:S403–S408.
https://doi.org/10.1016/S0196-8904(96)00302-0
D. P. Minh et al.
Park SW, Joo OS, Jung KD, Kim H, Han SH (2001) Development of ZnO/Al 2 O 3 catalyst for
reverse-water-gas-shift reaction of CAMERE (carbon dioxide hydrogenation to form methanol via a reverse-water-gas-shift reaction) process. Appl Catal A Gen 211:81–90. https://doi.
org/10.1016/S0926-860X(00)00840-1
Park N, Park M-J, Lee Y-J, Ha K-S, Jun K-W (2014) Kinetic modeling of methanol synthesis over
commercial catalysts based on three-site adsorption. Fuel Proc Technol 125:139–147. https://
doi.org/10.1016/j.fuproc.2014.03.041
Pham MD, Siang TJ, Vo D-VN, Phan TS, Ridart C, Nzihou A, Grouset D (2018) Chapter 4: hydrogen production from biogas reforming: an overview of steam reforming, dry reforming, dual
reforming, and tri-reforming of methane. In: Azzaro-Pantel C (ed) Hydrogen supply chain:
design, deployment and operation. Academic Press, pp 111–166. https://doi.org/10.1016/
B978-0-12-811197-0.00004-X
Pokrovski K, Bell A (2006) Effect of dopants on the activity of Cu/M 0.3 Zr 0.7 O 2 (M = Ce, Mn,
and Pr) for CO hydrogenation to methanol. J Catal 244(1):43–51. https://doi.org/10.1016/j.
jcat.2006.07.031
Portha JF, Parkhomenko K, Kobl K, Roger AC, Arab S, Commenge JM, Falk L (2017) Kinetics of
methanol synthesis from carbon dioxide hydrogenation over copper–zinc oxide catalysts. Ind
Eng Chem Res 56(45):13133–13145. https://doi.org/10.1021/acs.iecr.7b01323
Prieto G, de Jong KP, de Jongh PE (2013) Towards ‘greener’ catalyst manufacture: reduction of
wastewater from the preparation of Cu/ZnO/Al 2 O 3 methanol synthesis catalysts. Catal Today
215:142–151. https://doi.org/10.1016/j.cattod.2013.03.033
Puga AV (2016) Light-promoted hydrogenation of carbon dioxide – an overview. Top Catal 59(15–
16):1268–1278. https://doi.org/10.1007/s11244-016-0658-z
Quadrelli EA, Centi G, Duplan J-L, Perathoner S (2011) Carbon dioxide recycling: emerging
large-scale technologies with industrial potential. ChemSusChem 4:1194–1215. https://doi.
org/10.1002/cssc.201100473
Rafiee A, Khalilpour KR, Milani D, Panahie M (2018) Trends in CO 2 conversion and utilization:
a review from process systems perspective. J Environ Chem Eng 6:5771–5794. https://doi.
org/10.1016/j.jece.2018.08.065
Rezaul Karim KM, Ong HR, Abdullah H, Yousuf A, Cheng CK, Rahman Khan MM (2018)
Photoelectrochemical reduction of carbon dioxide to methanol on p-type CuFe 2 O 4 under visible light irradiation. Int J Hydrogen Ener 43(39):18185–18193. https://doi.org/10.1016/j.
ijhydene.2018.07.174
Rezayee NM, Huff CA, Sanford MS (2015) Tandem amine and ruthenium-catalyzed hydrogenation
of CO 2 to methanol. J Am Chem Soc 137(3):1028–1031. https://doi.org/10.1021/ja511329m
Richard AR, Fan M (2017) Low-pressure hydrogenation of CO 2 to CH 3 OH using Ni-In-Al/SiO 2
catalyst synthesized via a phyllosilicate precursor. ACS Catal 7(9):5679–5692. https://doi.
org/10.1021/acscatal.7b00848
Riduan SN, Zhang Y, Ying JY (2009) Conversion of carbon dioxide into methanol with silanes
over N-heterocyclic carbene catalysts. Angew Chem Int Ed 48(18):3322–3325. https://doi.
org/10.1002/anie.200806058
Ro I, Liu Y, Ball MR, Jackson DHK, Chada JP, Sener C, Kuech TF, Madon RJ, Huber GW,
Dumesic JA (2016) Role of the Cu-ZrO 2 interfacial sites for conversion of ethanol to ethyl
acetate and synthesis of methanol from CO 2 and H 2 . ACS Catal 6(10):7040–7050. https://doi.
org/10.1021/acscatal.6b01805
Saito M (1998) R&D activities in Japan on methanol synthesis from CO 2 and H 2 . Catal Surv Jpn
2(2):175–184. https://doi.org/10.1023/A:1019082525994
Saito M, Fujitani T, Takeuchi M, Watanabe T (1996) Development of copper/zinc oxide-based
multicomponent catalysts for methanol synthesis from carbon dioxide and hydrogen. Appl
Catal A Gen 138(2):311–318. https://doi.org/10.1016/0926-860X(95)00305-3
Saito M, Takeuchi M, Watanabe T, Toyir J, Luo S, Wu J (1997) Methanol synthesis from CO 2 and
H 2 over a Cu/ZnO-based multicomponent catalyst. Energy Convers Manag 38:S403–S408.
https://doi.org/10.1016/S0196-8904(96)00302-0
D. P. Minh et al.
