Vacancy-enabled N


Journal

Nature
ISSN: 1476-4687
Titre abrégé: Nature
Pays: England
ID NLM: 0410462

Informations de publication

Date de publication:
07 2020
Historique:
received: 19 10 2019
accepted: 21 04 2020
entrez: 17 7 2020
pubmed: 17 7 2020
medline: 17 7 2020
Statut: ppublish

Résumé

Ammonia (NH

Identifiants

pubmed: 32669696
doi: 10.1038/s41586-020-2464-9
pii: 10.1038/s41586-020-2464-9
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

391-395

Références

Smil, V. Detonator of the population explosion. Nature 400, 415 (1999).
doi: 10.1038/22672
Pool, A. J., Lobkovsky, E. & Chirik, P. J. Hydrogenation and cleavage of dinitrogen to ammonia with a zirconium complex. Nature 427, 527–530 (2004).
doi: 10.1038/nature02274
Gambarotta, S. & Scott, J. Multimetallic cooperative activation of N
doi: 10.1002/anie.200301669
van Ommen, J. G., Bolink, W. J., Prasad, J. & Mars, P. The nature of the potassium compound acting as a promoter in iron–alumina catalysts for ammonia synthesis. J. Catal. 38, 120–127 (1975).
doi: 10.1016/0021-9517(75)90069-X
Ozaki, A. Development of alkali-promoted ruthenium as a novel catalyst for ammonia synthesis. Acc. Chem. Res. 14, 16–21 (1981).
doi: 10.1021/ar00061a003
Bielawa, H., Hinrichsen, O., Birkner, A. & Muhler, M. The ammonia synthesis catalyst of the next generation: barium-promoted oxide-supported ruthenium. Angew. Chem. Int. Ed. 40, 1061–1063 (2001).
doi: 10.1002/1521-3773(20010316)40:6<1061::AID-ANIE10610>3.0.CO;2-B
Ertl, G. Reactions at surfaces: from atoms to complexity (Nobel lecture). Angew. Chem. Int. Ed. 47, 3524–3535 (2008).
doi: 10.1002/anie.200800480
Hansen, T. W. et al. Atomic-resolution in situ transmission electron microscopy of a promoter of a heterogeneous catalyst. Science 294, 1508–1510 (2001).
doi: 10.1126/science.1064399
Kitano, M. et al. Ammonia synthesis using a stable electride as an electron donor and reversible hydrogen store. Nat. Chem. 4, 934–940 (2012).
doi: 10.1038/nchem.1476
Kanbara, S. et al. Mechanism switching of ammonia synthesis over Ru-loaded electride catalyst at metal–insulator transition. J. Am. Chem. Soc. 137, 14517–14524 (2015).
doi: 10.1021/jacs.5b10145
Kitano, M. et al. Electride support boosts nitrogen dissociation over ruthenium catalyst and shifts the bottleneck in ammonia synthesis. Nat. Commun. 6, 6731 (2015).
doi: 10.1038/ncomms7731
Hunter, S. M. et al. A study of
doi: 10.1021/cs400336z
Zeinalipour-Yazdi, C. D., Hargreaves, J. S. J. & Catlow, C. R. DFT-D3 study of molecular N
doi: 10.1021/acs.jpcc.6b04748
Hargreaves, J. S. J. Nitrides as ammonia synthesis catalysts and as potential nitrogen transfer reagents. Appl. Petrochem. Res. 4, 3–10 (2014).
doi: 10.1007/s13203-014-0049-y
Laassiri, S., Zeinalipour-Yazdi, C. D., Catlow, C. R. A. & Hargreaves, J. S. J. The potential of manganese nitride based materials as nitrogen transfer reagents for nitrogen chemical looping. Appl. Catal. B 223, 60–66 (2018).
doi: 10.1016/j.apcatb.2017.04.073
Wang, P. et al. Breaking scaling relations to achieve low-temperature ammonia synthesis through LiH-mediated nitrogen transfer and hydrogenation. Nat. Chem. 9, 64–70 (2017).
doi: 10.1038/nchem.2595
Chang, F. et al. Alkali and alkaline earth hydrides-driven N
doi: 10.1021/jacs.8b08334
Balasubramanian, K., Khare, S. V. & Gall, D. Energetics of point defects in rocksalt structure transition metal nitrides: thermodynamic reasons for deviations from stoichiometry. Acta Mater. 159, 77–88 (2018).
doi: 10.1016/j.actamat.2018.07.074
Jacobsen, C. J. H. et al. Catalyst design by interpolation in the periodic table: bimetallic ammonia synthesis catalysts. J. Am. Chem. Soc. 123, 8404–8405 (2001).
doi: 10.1021/ja010963d
Nørskov, J. K., Bligaard, T., Rossmeisl, J. & Christensen, C. H. Towards the computational design of solid catalysts. Nat. Chem. 1, 37–46 (2009).
doi: 10.1038/nchem.121
Gao, W. et al. Production of ammonia via a chemical looping process based on metal imides as nitrogen carriers. Nat. Energy 3, 1067–1075 (2018).
doi: 10.1038/s41560-018-0268-z
Kojima, R. & Aika, K. Cobalt molybdenum bimetallic nitride catalysts for ammonia synthesis: part 2. Kinetic study. Appl. Catal. A 218, 121–128 (2001).
doi: 10.1016/S0926-860X(01)00626-3
Bion, N. et al. The role of preparation route upon the ambient pressure ammonia synthesis activity of Ni
doi: 10.1016/j.apcata.2014.10.030
Inoue, Y. et al. Direct activation of cobalt catalyst by 12CaO·7Al
doi: 10.1021/acscatal.8b03650
Gong, Y. et al. Ternary intermetallic LaCoSi as a catalyst for N
doi: 10.1038/s41929-017-0022-0
Kitano, M. et al. Essential role of hydride ion in ruthenium-based ammonia synthesis catalysts. Chem. Sci. 7, 4036–4043 (2016).
doi: 10.1039/C6SC00767H
Wu, J. et al. Intermetallic electride catalyst as a platform for ammonia synthesis. Angew. Chem. Int. Ed. 58, 825–829 (2019).
doi: 10.1002/anie.201812131
Kitano, M. et al. Self-organized ruthenium–barium core–shell nanoparticles on a mesoporous calcium amide matrix for efficient low-temperature ammonia synthesis. Angew. Chem. Int. Ed. 57, 2648–2652 (2018).
doi: 10.1002/anie.201712398
Hayashi, F. et al. NH
doi: 10.1021/ja504185m
Lu, Y. et al. Synthesis of rare-earth-based metallic electride nanoparticles and their catalytic applications to selective hydrogenation and ammonia synthesis. ACS Catal. 8, 11054–11058 (2018).
doi: 10.1021/acscatal.8b03743
Ye, T. N., Li, J., Kitano, M., Sasase, M. & Hosono, H. Electronic interactions between a stable electride and a nano-alloy control the chemoselective reduction reaction. Chem. Sci. 7, 5969–5975 (2016).
doi: 10.1039/C6SC01864E
Kresse, G. & Furthmüller, J. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys. Rev. B 54, 11169–11186 (1996).
doi: 10.1103/PhysRevB.54.11169
Kresse, G. & Joubert, D. From ultrasoft pseudopotentials to the projector augmented-wave method. Phys. Rev. B 59, 1758–1775 (1999).
doi: 10.1103/PhysRevB.59.1758
Perdew, J. P., Burke, K. & Ernzerhof, M. Generalized gradient approximation made simple. Phys. Rev. Lett. 77, 3865–3868 (1996).
doi: 10.1103/PhysRevLett.77.3865
Blöchl, P. E. Projector augmented-wave method. Phys. Rev. B 50, 17953–17979 (1994).
doi: 10.1103/PhysRevB.50.17953
Perdew, J. P., Burke, K. & Ernzerhof, M. Errata: generalized gradient approximation made simple [Phys. Rev. Lett. 77, 3865 (1996)]. Phys. Rev. Lett. 78, 1396 (1997).
doi: 10.1103/PhysRevLett.78.1396
Henkelman, G. & Jónsson, H. Improved tangent estimate in the nudged elastic band method for finding minimum energy paths and saddle points. J. Chem. Phys. 113, 9978–9985 (2000).
doi: 10.1063/1.1323224

Auteurs

Tian-Nan Ye (TN)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Sang-Won Park (SW)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Yangfan Lu (Y)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Jiang Li (J)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Masato Sasase (M)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Masaaki Kitano (M)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan. kitano.m.aa@m.titech.ac.jp.
Precursory Research for Embryonic Science and Technology (PRESTO), Japan Science and Technology Agency, Saitama, Japan. kitano.m.aa@m.titech.ac.jp.

Tomofumi Tada (T)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan.

Hideo Hosono (H)

Materials Research Center for Element Strategy, Tokyo Institute of Technology, Yokohama, Japan. hosono@mces.titech.ac.jp.

Classifications MeSH