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B–H Bond Activation in a Rh(III) Hydrido Borohydride Complex [Rh(H)(K2‑BH4)tBu4(PNCNP)] Gives a Rh(I) σ‑Dihydrogen Complex [Rh(η2‑H2)tBu4(PNCNP)]: An Experimental and Theoretical Study

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Figshare2026-04-28 收录
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https://figshare.com/articles/dataset/B_H_Bond_Activation_in_a_Rh_III_Hydrido_Borohydride_Complex_Rh_H_K_sup_2_sup_BH_sub_4_sub_sup_i_t_i_Bu4_sup_PNCNP_Gives_a_Rh_I_Dihydrogen_Complex_Rh_sup_2_sup_H_sub_2_sub_sup_i_t_i_Bu4_sup_PNCNP_An_Experimental_and_Theoretical_Study/27193982
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Rh­(III) pincer hydrido chloride and borohydride complexes [Rh­(H)­CltBu4(PNCNP)] (1) [tBu4(PNCNP) = 2,6-bis­((di-tert-butylphosphaneyl)­amino)­benzen-1-ide] and [Rh­(H)­(K2-BH4)tBu4(PNCNP)] (2) have been synthesized and characterized. Heating the [Rh­(H)­(K2-BH4)tBu4(PNCNP)] complex (2) at 336 K in tetrahydrofuran (THF) afforded the Rh­(I) σ-H2 complex, [Rh­(η2-H2)tBu4(PNCNP)] (3), and H3B·THF via the B–H bond activation of the borohydride. The [Rh­(η2-HD)tBu4(PNCNP)] (3-HD) isotopomer was also prepared by heating the [Rh­(H)­(K2-BD4)tBu4(PNCNP)] complex (2-BD4) at 336 K in THF. The formation of [Rh­(η2-H2)tBu4(PNCNP)] (3) was established using 1JH,D coupling constant and variable temperature spin–lattice relaxation time measurements and supported by density functional theory (DFT) calculations. At 273 K, the [Rh­(η2-H2)tBu4(PNCNP)] complex (3) reverted back to the [Rh­(H)­(K2-BH4)tBu4(PNCNP)] complex (2) upon reaction with H3B·THF. The [Rh­(η2-H2)tBu4(PNCNP)] complex (3) was also obtained independently by two alternative routes. The reaction of [Rh­(η2-H2)tBu4(PNCNP)] (3) with N2 at 273 K afforded the [Rh­(N2)tBu4(PNCNP)] complex (4); this reaction was found to be reversible. The reaction of [Rh­(η2-H2)tBu4(PNCNP)] (3) with CH3CN, CO, and O2 occurred instantaneously and yielded the corresponding products [Rh­(CH3CN)tBu4(PNCNP)] (5), [Rh­(CO)tBu4(PNCNP)] (6), and [Rh­(η2-O2)tBu4(PNCNP)] (7), respectively. These observations together with computational studies showed that the binding strengths of CH3CN, CO, and O2 with the Rh center are significantly greater than those of H2 and N2.
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