cis -Selective Hydrogenation of Aryl Germanes: A Direct Approach to Access Saturated Carbo- and Heterocyclic Germanes

Kaithal, Akash; Sasmal, Himadri Sekhar; Dutta, Subhabrata; Schäfer, Felix; Schlichter, Lisa; Glorius, Frank

Research article (journal) | Peer reviewed

Abstract

A catalytic approach of synthesizing the cis-selective saturated carbo- and heterocyclic germanium compounds (3D framework) is reported via the hydrogenation of readily accessible aromatic germanes (2D framework). Among the numerous catalysts tested, Nishimura’s catalyst (Rh2O3/PtO2·H2O) exhibited the best hydrogenation reactivity with an isolated yield of up to 96%. A broad range of substrates including the synthesis of unprecedented saturated heterocyclic germanes was explored. This selective hydrogenation strategy could tolerate several functional groups such as −CF3, −OR, −F, −Bpin, and −SiR3 groups. The synthesized products demonstrated the applications in coupling reactions including the newly developed strategy of aza-Giese-type addition reaction (C–N bond formation) from the saturated cyclic germane product. These versatile motifs can have a substantial value in organic synthesis and medicinal chemistry as they show orthogonal reactivity in coupling reactions while competing with other coupling partners such as boranes or silanes, acquiring a three-dimensional structure with high stability and robustness.

Details about the publication

JournalJournal of the American Chemical Society (J. Am. Chem. Soc.)
Volume145
Issue7
Page range4109-4118
StatusPublished
Release year2023
Language in which the publication is writtenEnglish
DOI10.1021/jacs.2c12062
Link to the full texthttps://pubs.acs.org/doi/10.1021/jacs.2c12062
KeywordsCatalysts; Chemical reactions; Group 14 compounds; Hydrocarbons; Hydrogenation

Authors from the University of Münster

Glorius, Frank
Professur für Organische Chemie (Prof. Glorius)
Kaithal, Akash
Professur für Organische Chemie (Prof. Glorius)
Schäfer, Felix Richard
Professur für Organische Chemie (Prof. Glorius)
Schlichter, Lisa
Professur für Synthese Nanoskaliger Systeme (Prof. Ravoo)