199
© Springer Nature Switzerland AG 2020
Inamuddin et al. (eds.), Conversion of Carbon Dioxide into Hydrocarbons Vol. 2
Technology, Environmental Chemistry for a Sustainable World 41,
https://doi.org/10.1007/978-3-030-28638-5
A
Abidin, S.Z., 186–196
Adkins, H., 94
Ainirazali, N., 186–196
Albo, J., 81
Allen, M.M., 26
Angelo, L., 122
Angermayr, S.A., 27
Aresta, M., 25
Arie, B.-B., 24
Aromatic and aliphatic monomer, 11, 23, 56
Ashley, A.E., 136
Atsumi, S., 21
Azim, A.A., 4–32
B
Bach, L.G., 161
Baltes, C., 122
Battaglino, B., 5
Behrens, M., 122
Bellini, E., 32
Biological carbon capture and utilization, 46
Biosynthesis, 11, 47–53, 57, 68
Bocarsly, A.B., 137
Bontemps, S., 180
Boston, D.J., 136
Bulutoglu, S.P., 191–193
C
Carbon dioxide (CO 2 ), 25, 46–68, 77, 93–104,
113–147, 161–180, 187, 188, 191,
193–194
Carbon formation, 164, 188, 189, 191, 193, 195
Carroll, A.L., 21
Catalyst deactivation, 190, 191, 194, 196
Catalyst support, 189–190
Catalytic hydrogenation, 77, 78, 125, 127
Catalytic properties, 6, 189
Chai, G.L., 171
Chakraborty, S., 135
Chan, F.L., 178
Chen, L., 113–147
Chiang, C.-L., 104
Chow, Y.Y.S., 20
Circular economy, 163
CO 2 , see Carbon dioxide (CO 2 )
CO 2 hydrogenation, 102, 103, 129, 164,
177–180
CO 2 reduction, 10, 94–97, 100, 101, 103, 104,
164–172, 174–177, 179, 180
Commercial applications, 53, 68
Cordara, A., 17
D
Detweiler, Z.M., 99
Dibenedetto, A., 25
Dry reforming, 179, 186
E
Eco-design, 14
Electrocatalysis, 100
Environment, 4, 10, 14, 27, 31, 46, 47, 54–56,
68, 76, 77, 80, 93, 94, 114, 136, 140,
161, 165, 166, 168, 187
Enzymatic catalysis, 5
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