164
Y. Hori and T. Abe
Finally, while there is still much more work to do to fully understand the reaction
mechanism for methane hydroxylation, it is clear that computational chemistry will
be even more tightly associated with the experimental quest for new and more efficient
transition metal catalysts.
References
1. Adebajo MO, Frost RL (2012) Recent Advances in Catalytic/Biocatalytic Conversion of Greenhouse Methane and Carbon Dioxide to Methanol and Other Oxygenates. Liu G (ed) Greenhouse
Gases - Capturing, Utilization and Reduction, IntechOpen, p 31–56.
2. Gunsalus NJ, Koppaka A, Park SH, Bischof SM, Hashiguchi BG, Periana RA (2017) Chem
Rev 117:8521–8573.
3. Ravi M, Ranocchiari M, van Bokhoven JA (2017) Angew Chem Int Ed 56:16464–16483.
4. Holmen A (2009) Catal Today 142:2–8.
5. Benson SW (1965) J Chem Educ 42:502–518.
6. Hammes-Schiffer S (2017) Acc Chem Res 50:561–566.
7. Vogiatzis KD, Polynski MV, Kirkland JK, Townsend J, Hashemi A, Liu C, Pidko EA (2019)
Chem Rev 119:2453–2523.
8. Shilov AE, Shteinman AA (1977) Coord Chem Rev 24:97–143.
9. Periana RA, Taube DJ, Evitt ER, Löffler DG, Wentrcek PR, Voss G, Masuda T (1993) Science
259:340–343.
10. Periana RA, Taube DJ, Gamble S, Taube H, Satoh T, Fujii H (1998) Science 280:560–564.
11. Alvarez-Galvan MC, Mota N, Ojeda M, Rojas S, Navarro RM, Fierro JLG (2011) Catal Today
171:15–23.
12. Hartwig JF (2010) Organotransition Metal Chemistry: From Bonding to Catalysis. University
Science Books, Sausalito, Calif.
13. Balcells D, Clot E, Eisenstein O (2010) Chem Rev 110:749–823.
14. Siegbahn PEM, Crabtree RH (1996) J Am Chem Soc 118:4442–4450.
15. Shilov AE (1984) Activation of saturated hydrocarbons by transition metal complexes. D.
Reidel Pub. Co.
16. Gilbert TM, Hristov I, Ziegler T (2001) Organometallics 20:1183–1189.
17. Ziatdinov VR, Oxgaard J, Mironov OA, Young KJ, Goddard WA, 3rd, Periana RA (2006) J
Am Chem Soc 128:7404–7405.
18. Tsuji Y, Yoshizawa K (2018) J Phys Chem C 122:15359–15381.
19. Dalton H (2005) The Leeuwenhoek Lecture 2000 The natural and unnatural history of methaneoxidizing bacteria. Philosophical Transactions of the Royal Society B: Biological Sciences
360:1207–1222.
20. Hanson RS, Hanson TE (1996) Microbiol Rev 60:439–471
21. Kopp DA, Lippard SJ (2002) Curr Opin Chem Biol 6:568–576.
22. Balasubramanian R, Rosenzweig AC (2007) Acc Chem Res 40:573–580.
23. Himes RA, Karlin KD (2009) Proc Natl Acad Sci U S A 106:18877–18878.
24. Sorokin AB, Kudrik EV, Bouchu D (2008) Chem Commun:2562–2564.
25. Shilov AE, Shul’pin GB (1997) Chem Rev 97:2879–2932.
26. Periana RA, Mironov O, Taube D, Bhalla G, Jones CJ (2003) Science 301:814–818.
27. Bar-Nahum I, Khenkin AM, Neumann R (2004) J Am Chem Soc 126:10236–10237.
28. Periana RA, Bhalla G, Tenn WJ, Young KJH, Liu XY, Mironov O, Jones CJ, Ziatdinov VR
(2004) J Mol Catal A: Chem 220:7–25.
29. Ansari M, Vyas N, Ansari A, Rajaraman G (2015) Dalton Trans 44:15232–15243.
30. Chan SI, Lu YJ, Nagababu P, Maji S, Hung MC, Lee MM, Hsu IJ, Minh PD, Lai JC, Ng KY,
Ramalingam S, Yu SS, Chan MK (2013) Angew Chem Int Ed 52:3731–3735.
Y. Hori and T. Abe
Finally, while there is still much more work to do to fully understand the reaction
mechanism for methane hydroxylation, it is clear that computational chemistry will
be even more tightly associated with the experimental quest for new and more efficient
transition metal catalysts.
References
1. Adebajo MO, Frost RL (2012) Recent Advances in Catalytic/Biocatalytic Conversion of Greenhouse Methane and Carbon Dioxide to Methanol and Other Oxygenates. Liu G (ed) Greenhouse
Gases - Capturing, Utilization and Reduction, IntechOpen, p 31–56.
2. Gunsalus NJ, Koppaka A, Park SH, Bischof SM, Hashiguchi BG, Periana RA (2017) Chem
Rev 117:8521–8573.
3. Ravi M, Ranocchiari M, van Bokhoven JA (2017) Angew Chem Int Ed 56:16464–16483.
4. Holmen A (2009) Catal Today 142:2–8.
5. Benson SW (1965) J Chem Educ 42:502–518.
6. Hammes-Schiffer S (2017) Acc Chem Res 50:561–566.
7. Vogiatzis KD, Polynski MV, Kirkland JK, Townsend J, Hashemi A, Liu C, Pidko EA (2019)
Chem Rev 119:2453–2523.
8. Shilov AE, Shteinman AA (1977) Coord Chem Rev 24:97–143.
9. Periana RA, Taube DJ, Evitt ER, Löffler DG, Wentrcek PR, Voss G, Masuda T (1993) Science
259:340–343.
10. Periana RA, Taube DJ, Gamble S, Taube H, Satoh T, Fujii H (1998) Science 280:560–564.
11. Alvarez-Galvan MC, Mota N, Ojeda M, Rojas S, Navarro RM, Fierro JLG (2011) Catal Today
171:15–23.
12. Hartwig JF (2010) Organotransition Metal Chemistry: From Bonding to Catalysis. University
Science Books, Sausalito, Calif.
13. Balcells D, Clot E, Eisenstein O (2010) Chem Rev 110:749–823.
14. Siegbahn PEM, Crabtree RH (1996) J Am Chem Soc 118:4442–4450.
15. Shilov AE (1984) Activation of saturated hydrocarbons by transition metal complexes. D.
Reidel Pub. Co.
16. Gilbert TM, Hristov I, Ziegler T (2001) Organometallics 20:1183–1189.
17. Ziatdinov VR, Oxgaard J, Mironov OA, Young KJ, Goddard WA, 3rd, Periana RA (2006) J
Am Chem Soc 128:7404–7405.
18. Tsuji Y, Yoshizawa K (2018) J Phys Chem C 122:15359–15381.
19. Dalton H (2005) The Leeuwenhoek Lecture 2000 The natural and unnatural history of methaneoxidizing bacteria. Philosophical Transactions of the Royal Society B: Biological Sciences
360:1207–1222.
20. Hanson RS, Hanson TE (1996) Microbiol Rev 60:439–471
21. Kopp DA, Lippard SJ (2002) Curr Opin Chem Biol 6:568–576.
22. Balasubramanian R, Rosenzweig AC (2007) Acc Chem Res 40:573–580.
23. Himes RA, Karlin KD (2009) Proc Natl Acad Sci U S A 106:18877–18878.
24. Sorokin AB, Kudrik EV, Bouchu D (2008) Chem Commun:2562–2564.
25. Shilov AE, Shul’pin GB (1997) Chem Rev 97:2879–2932.
26. Periana RA, Mironov O, Taube D, Bhalla G, Jones CJ (2003) Science 301:814–818.
27. Bar-Nahum I, Khenkin AM, Neumann R (2004) J Am Chem Soc 126:10236–10237.
28. Periana RA, Bhalla G, Tenn WJ, Young KJH, Liu XY, Mironov O, Jones CJ, Ziatdinov VR
(2004) J Mol Catal A: Chem 220:7–25.
29. Ansari M, Vyas N, Ansari A, Rajaraman G (2015) Dalton Trans 44:15232–15243.
30. Chan SI, Lu YJ, Nagababu P, Maji S, Hung MC, Lee MM, Hsu IJ, Minh PD, Lai JC, Ng KY,
Ramalingam S, Yu SS, Chan MK (2013) Angew Chem Int Ed 52:3731–3735.
