| Literature DB >> 35003590 |
Takumi Oishi1, Leonardo I Lugo-Fuentes2, Yichuan Jing1, J Oscar C Jimenez-Halla2, Joaquín Barroso-Flores3,4, Masaaki Nakamoto1, Yohsuke Yamamoto1, Nao Tsunoji5, Rong Shang1.
Abstract
Generation of dihydrogen from water splitting, also known as water reduction, is a key process to access a sustainable hydrogen economy for energy production and usage. The key step is the selective reduction of a protic hydrogen to an accessible and reactive hydride, which has proven difficult at a p-block element. Although frustrated Lewis pair (FLP) chemistry is well known for water activation by heterolytic H-OH bond cleavage, to the best of our knowledge, there has been only one case showing water reduction by metal-free FLP systems to date, in which silylene (SiII) was used as the Lewis base. This work reports the molecular design and synthesis of an ortho-phenylene linked bisborane-functionalized phosphine, which reacts with water stoichiometrically to generate H2 and phosphine oxide quantitatively under ambient conditions. Computational investigations revealed an unprecedented multi-centered electron relay mechanism offered by the molecular framework, shuttling a pair of electrons from hydroxide (OH-) in water to the separated proton through a borane-phosphonium-borane path. This simple molecular design and its water reduction mechanism opens new avenues for this main-group chemistry in their growing roles in chemical transformations. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35003590 PMCID: PMC8654027 DOI: 10.1039/d1sc05135k
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Chart 1Metal- (A) and p-block element (B and C)-based mechanisms for water activation and reduction.
Scheme 1Synthetic pathway to bis(boranylphenyl)phenyl phosphine derivatives 1a, 1b and 2.
Fig. 1Solid-state structures of 1a (a), 2 (b) and 3 (c). Thermal ellipsoids are drawn at 30% probability. Peripheral ellipsoids are omitted for clarity. CCDC: 2096462 (1a), 2096464 (2), 2096465 (3). See the ESI for 1-int, CCDC 2096463 and 3·H2O, CCDC 2109052.†
Fig. 2Reaction schemes and NMR spectra of 1b with H2O and D2O at room temperature (a) and with frozen water at −80 °C (b).
Fig. 3Proposed reaction mechanism for the formation of 3 calculated at the SMD(benzene): ω-B97XD/6-311G(d) level (298 K) (a) and NBO charges of the phosphorus and transfer of hydrogen atoms from H2 (observed in the NMR spectrum as 3-I) to H3 (b).