4.8 Article

Electrocatalytic O2 Reduction by an Organometallic Pd(III) Complex via a Binuclear Pd(III) Intermediate

Journal

ACS CATALYSIS
Volume 11, Issue 9, Pages 5202-5211

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.0c05726

Keywords

organometallic Pd(III) complex; O-2 reduction reaction (ORR); homogeneous electrocatalysis; heterogeneous electrocatalysis; second-order ORR kinetics; second-order foot-of-the-wave analysis

Funding

  1. University of Illinois

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This study evaluated the ORR reactivity of Pd-III with organic metal complexes, which showed high selectivity and efficiency, demonstrating different performance under different conditions.
The development of electrocatalysts for the selective O-2-to-H2O conversion, the O-2 reduction reaction (ORR), is of great interest for improving the performance of fuel cells. In this context, molecular catalysts that are known to mediate the 4H(+)/4e(-) reduction of O-2 to H2O tend to be marred by limited stability and selectivity in controlling the multiproton and multielectron transfer steps. Thus, evaluation of transition metal complexes, including organometallic species, for ORR reactivity could uncover molecular catalysts with improved properties. We have previously reported the synthesis and characterization of various organometallic Pd-III complexes stabilized by the tetradentate ligand N,N'-di-tert-butyl-2,11-diaza[3.3](2,6)pyridinophane ((t)BuN4). These complexes were shown to react with O-2 and undergo oxidatively induced C-C and C-heteroatom bond formation reactions in the presence of O-2. These O-2-induced oxidative transformations prompted us to evaluate the ORR reactivity of such organometallic Pd complexes, which to the best of our knowledge has never been studied before for any molecular Pd catalyst. Herein, we report the ORR reactivity of the [((t)BuN4)(PdMeCl)-Me-III](+) complex under both homogeneous and heterogeneous conditions in a nonaqueous and acidic aqueous electrolyte, respectively. Cyclic voltammetry and hydrodynamic electrochemical studies for [((t)BuN4)(PdMeCl)-Me-III](+) revealed that the electrocatalytic reduction of O-2 to H2O proceeds with Faradaic efficiencies (FEs) of 50-70% in the presence of acetic acid (AcOH) in MeCN. The selectivity toward H2O production further improved the FE to 80-90% in an acidic aqueous medium (pH 0), upon immobilization of the molecular catalyst onto edge plane graphite (EPG) electrodes. Analysis of electrochemical data suggests the formation of a binuclear PP intermediate in solution, likely a Pd-III-peroxo-Pd-III species, which dictates the thermochemistry of the ORR process for [((t)BuN4)(PdMeCl)-Me-III](+) in MeCN, thus being a rare example of a bimolecular ORR process. The maximum secondorder turnover frequency TOFmax2 = 2.76 x 10(8) M-1 s(-1) was determined for 0.32 mM of [((t)BuN4)(PdMeCl)-Me-III](+) in the presence of 1 M AcOH in O-2-saturated MeCN with an overpotential of 0.32 V. By comparison, a comparatively lower TOFmax2 = 1.25 x 10(5) M-1 at a higher overpotential of 0.8 V was observed for [((t)BuN4)(PdMeCl)-Me-III] PF6 adsorbed onto EPG electrodes in O-2-saturated 1 M H2SO4 aqueous solution. Overall, reported herein is a detailed ORR reactivity study using a Pd-III organometallic complex to benchmark its selectivity and energetics toward O-2 reduction in MeCN and acidic aqueous solutions.

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