Protonation of Dppbz- and Binap-Ligated Rhodathiaboranes Yielding Hydron, Hydride, and Hydrogen Exchange.

Inorg Chem

Departamento de Química Inorgánica, Instituto de Síntesis Química y Catálisis Homogénea (ISQCH), Universidad de Zaragoza-CSIC, Zaragoza 50009, Spain.

Published: October 2024

The reaction of the 11-vertex rhodathiaborane [8,8,8-(H)(PPh)-3-(NCH)--7,8-RhSBH] () with 1,2-bis(diphenylphosphine)benzene (dppbz) and ()-(-)-2,2'-bis(diphenylphosphino)-1,1'-binaphthyl (binap) affords [1,1-(η-dppbz)-3-(NCH)--1,2-RhSBH] () and [1,1-(η-binap)-3-(NCH)--1,2-RhSBH] (). These 11-vertex -rhodathiaborane chelates result from PPh ligand substitution at the rhodium center and a -to- structural cluster transformation driven by H loss. Treating compounds and with triflic acid (TfOH) leads to the formation of cationic clusters and . The hydrons bind to the polyhedral clusters, acquiring hydride character and providing chemical nonrigidity that manifests through metal vertex-to-thiaborane -rotations and concomitant hydron tautomerisms. The resulting cations react with hydrogen to form mixtures of hydrons, hydrogen, and hydridorhodathiaboranes in equilibrium. The reaction products are the result of heterolytic cleavage of the H-H bond, with full participation of the clusters and the addition of hydrogen atoms to the cages. In these reactions, there is a conversion of electrons and hydrons into hydrogen, and hydrogen into hydride ligands, demonstrating that these boron-based metal compounds act as electron reservoirs, capable of promoting multielectron processes.

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http://dx.doi.org/10.1021/acs.inorgchem.4c02652DOI Listing

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