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大学・研究所にある論文を検索できる 「Air-stable and reusable nickel phosphide nanoparticle catalyst for the highly selective hydrogenation of d-glucose to d-sorbitol」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

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Air-stable and reusable nickel phosphide nanoparticle catalyst for the highly selective hydrogenation of d-glucose to d-sorbitol

Yamaguchi, Sho 大阪大学

2021.03.07

概要

The hydrogenation of carbohydrates to polyols is an industrially important process, but it requires air-unstable, non-noble metal catalysts with low activity and harsh reaction conditions. Herein, we report a hydrotalcite (HT)-supported nickel phosphide nanoparticle (nano-Ni₂P/HT) that exhibits both air stability and high activity for the selective hydrogenation of d-glucose to d-sorbitol in water. The nano-Ni₂P/HT catalyst provides d-sorbitol in excellent yield with >99% selectivity under mild reaction conditions, and is the first non-noble metal catalyst that can operate under just 1 bar of H₂ or at ambient temperature. This high-performance nano-Ni₂P/HT catalyst is significantly different from conventional Ni(0) and NiO nanoparticles and Raney catalysts, which result in almost no production of d-sorbitol, demonstrating the unique catalysis of nano-Ni₂P/HT. Furthermore, nano-Ni₂P/HT shows the highest activity among those reported for non-noble metal catalysts. The nano-Ni₂P/HT catalyst can also be reused without sacrificing its high activity and selectivity. Additionally, the successful transformation of a concentrated d-glucose solution (50 wt%) to d-sorbitol has been achieved. This is the first example of an air-stable, highly active, and reusable non-noble metal catalyst that can replace conventional catalysts used for d-sorbitol production, thus providing a cheap, green, and sustainable route for this process.

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参考文献

1 O. Casanova, S. Iborra and A. Corma, ChemSusChem, 2009, 2, 1138-1144.

2 P. Gallezot, P. J. Cerino, B. Blanc, G. Fleche and P. Fuertes, J. Catal., 1994,146, 93-102.

3 J. J. Bozell and G. R. Petersen, Green Chem., 2010,12, 539- 554.

4 A. Corma, S. Iborra and A. Velty, Chem. Rev., 2007,107, 2411- 2502.

5 J. Song, H. Fan, J. Ma and B. Han, Green Chem., 2013,15, 2619-2635.

6 M. Besson, P. Gallezot and C. Pinel, Chem. Rev., 2014, 114, 1827-1870.

7 P. H. Brahme and L. K. Doraiswamy, Ind. Eng. Chem. Process Des. Dev., 1976,15,130-137.

8 J. Wisnlak and R. Simon, Ind. Eng. Chem. Prod. Res. Dev., 1979,18, 50-57.

9 H. Li, W. Wang and J. F. Deng, J. Catal., 2000,191, 257-260.

10 H. Li, H. Li and J.-F. Deng, Catal. Today, 2002, 74, 53-63.

11 B. Kusserow, S. Schimpf and P. Claus, Adv. Synth. Catal., 2003, 345, 289-299.

12 S. Schimpf, C. Louis and P. Claus, Appl. Catal. A, 2007, 318, 45- 53.

13 J. Zhang, L. Lin, J. Zhang and J. Shi, Carbohydr. Res., 2011, 346, 1327-1332.

14 J. Guo, Y. Hou, C. Yang, Y. Wang, H. He and W. Li, Catal. Commun., 2011,16, 86-89.

15 J. Guo, Y. Hou, C. Yang, Y. Wang and L. Wang, Mater. Lett., 2012, 67,151-153.

16 J. Zhang, S. Wu, Y. Liu and B. Li, Catal. Commun., 2013, 35, 23- 26.

17 R. Rodiansono and S. Shimazu, Bull. Chem. React. Eng. Catal., 2013, 8, 40-46.

18 Q. Dong, Y. Huang, H. Yang, J. Pei, K. Li, M. Yuan, W. Xiao, W. Ni and Z. Hou, Top. Cat al., 2017, 60, 666-676.

19 H. Singh, A. Rai, R. Yadav and A. K. Sinha, Mol. Cat al., 2018, 451, 186-191.

20 Y. Yang, H. Gu, Q. Zhang, H. Li and H. Li, ACS Appl. Mater. Interfaces, 2020,12, 26101-26112.

21 H. Li, H. Li, W. Wang and J.-F. Deng, Chem. Lett., 1999, 28, 629-630.

22 H. Li, H. Li and M. Wang, Appl. Catal. A, 2001, 207, 129-137.

23 H. Li and J.-F. Deng, J. Chem. Technol. Biotechnol., 2001,76, 985-990.

24 P. Gallezot, N. Nicolaus, G. Fleche, P. Fuertes and A. Perrard, J. Catal., 1998,180, 51-55.

25 K. van Gorp, E. Boerman, C. V. Cavenaghi and P. Berben, Catal. Today, 1999, 52, 349-361.

26 H. Guo, H. Li, Y. Xu and M. Wang, Mater. Lett., 2002, 57, 392- 398.

27 B. W. Hoffer, E. Crezee, P. R. M. Mooijman, A. D. van Langeveld, F. Kapteijn and J. A. Moulijn, Catal. Today, 2003, 79-80, 35-41.

28 E. P. Maris, W. C. Ketchie, V. Oleshko and R. J. Davis, J. Phys. Chem. B, 2006,110, 7869-7876.

29 J. Liu, P. Bai and X. S. Zhao, Phys. Chem. Chem. Phys., 2011,13, 3758-3763.

30 D. K. Mishra, J.-M. Lee, J.-S. Chang and J.-S. Hwang, Catal. Today, 2012,185, 104-108.

31 V. N. Sapunov, M. Y. Grigoryev, E. M. Sulman, M. B. Konyaeva and V. G. Matveeva, J. Phys. Chem. A, 2013,117, 4073-4083.

32 D. K. Mishra, A. A. Dabbawala, J. J. Park, S. H. Jhung and J.-S. Hwang, Catal. Today, 2014, 232, 99-107.

33 A. Aho, S. Roggan, K. Eranen, T. Salmi and D. Y. Murzin, Catal. Sci. Technol., 2015, 5, 953-959.

34 A. Aho, S. Roggan, O. A. Simakova, T. Salmi and D. Y. Murzin, Catal. Today, 2015, 241,195-199.

35 P. A. Lazaridis, S. Karakoulia, A. Delimitis, S. M. Coman, V. I. Parvulescu and K. S. Triantafyllidis, Catal. Today, 2015, 257, 281-290.

36 A. A. Dabbawala, D. K. Mishra and J.-S. Hwang, Catal. Today, 2016, 265, 163-173.

37 J. A. Melero, J. Moreno, J. Iglesias, G. Morales, J. L. G. Fierro, R. Sanchez-Vazquez, A. Cubo and B. Garcia, Mol. Catal., 2020, 484, 110802.

38 A. Perrard, P. Gallezot, J.-P. Joly, R. Durand, C. Baljou, B. Coq and P. Trens, Appl. Catal. A, 2007, 331, 100-104.

39 X. Zhang, L. J. Durndell, M. A. Isaacs, C. M. A. Parlett, A. F. Lee and K. Wilson, ACS Catal., 2016, 6, 7409-7417.

40 D. Shi, R. Wojcieszak, S. Paul and E. Marceau, Catalysts, 2019, 9, 451.

41 B. W. Hoffer, E. Crezee, F. Devred, P. R. M. Mooijman, W. G. Sloof, P. J. Kooyman, A. D. van Langeveld, F. Kapteijn and J. A. Moulijn, Appl. Catal. A, 2003, 253, 437-452.

42 A. Romero, A. Nieto-Marquez and E. Alonso, Appl. Catal. A, 2017, 529, 49-59.

43 N. Dechamp, A. Gamez, A. Perrard and P. Gallezot, Catal. Today, 1995, 24, 29-34.

44 S. Fujita, K. Nakajima, J. Yamasaki, T. Mizugaki, K. Jitsukawa and T. Mitsudome, ACS Catal., 2020,10, 4261-4267.

45 A. L. Ankudinov, B. Ravel, J. J. Rehr and S. D. Conradson, Phys. Rev. B,1998, 58, 7565-7576.

46 C. Wu and P. T. Williams, Environ. Sci. Technol., 2010, 44, 5993-5998.

47 B. Mallesham, P. Sudarsanam, B. V. S. Reddy, B. G. Rao and B. M. Reddy, ACS Omega, 2018, 3,16839-16849.

48 Y. Pan, Y. Liu, J. Zhao, K. Yang, J. Liang, D. Liu, W. Hu, D. Liu, Y. Liu and C. Liu, J. Mater. Chem. A, 2015, 3,1656-1665.

49 M. Yabushita, N. Shibayama, K. Nakajima and A. Fukuoka, ACS Catal., 2019, 9, 2101-2109.

50 C. Miao, T. Hui, Y. Liu, J. Feng and D. Li, J. Catal., 2019, 370, 107-117.

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