Site-specific electronic structure of covalently linked bimetallic dyads from nitrogen K-edge x-ray absorption spectroscopy

Author:

Ryland Elizabeth S.1ORCID,Liu Xiaolin2,Kumar Gaurav1,Raj Sumana L.1,Xie Zhu-Lin3ORCID,Mengele Alexander K.4ORCID,Fauth Sven S.4ORCID,Siewerth Kevin4ORCID,Dietzek-Ivanšić Benjamin56,Rau Sven4ORCID,Mulfort Karen L.3ORCID,Li Xiaosong2ORCID,Cordones Amy A.1ORCID

Affiliation:

1. Stanford PULSE Institute, SLAC National Accelerator Laboratory 1 , Menlo Park, California 94025, USA

2. University of Washington 2 , Seattle, Washington 98195, USA

3. Division of Chemical Sciences and Engineering 3 , Argonne National Laboratory, Lemont, Illinois 60439, USA

4. Institute of Inorganic Chemistry I, Ulm University 4 , Albert-Einstein-Allee 11, 89081 Ulm, Germany

5. Leibniz Institute of Photonic Technology, Research Department Functional Interfaces 5 , Albert-Einstein Straße 9, 07745 Jena, , Helmholtzweg 4, 07743 Jena, Germany

6. Germany and Friedrich Schiller University Jena, Institute of Physical Chemistry 5 , Albert-Einstein Straße 9, 07745 Jena, , Helmholtzweg 4, 07743 Jena, Germany

Abstract

A nitrogen K-edge x-ray absorption near-edge structure (XANES) survey is presented for tetrapyrido[3,2-a:2′,3′-c:3″,2″-h:2‴,3‴-j]phenazine (tpphz)-bridged bimetallic assemblies that couple chromophore and catalyst transition metal complexes for light driven catalysis, as well as their individual molecular constituents. We demonstrate the high N site sensitivity of the N pre-edge XANES features, which are energetically well-separated for the phenazine bridge N atoms and for the individual metal-bound N atoms of the inner coordination sphere ligands. By comparison with the time-dependent density functional theory calculated spectra, we determine the origins of these distinguishable spectral features. We find that metal coordination generates large shifts toward higher energy for the metal-bound N atoms, with increasing shift for 3d < 4d < 5d metal bonding. This is attributed to increasing ligand-to-metal σ donation that increases the effective charge of the bound N atoms and stabilizes the N 1s core electrons. In contrast, the phenazine bridge N pre-edge peak is found at a lower energy due to stabilization of the low energy electron accepting orbital localized on the phenazine motif. While no sensitivity to ground state electronic coupling between the individual molecular subunits was observed, the spectra are sensitive to structural distortions of the tpphz bridge. These results demonstrate N K-edge XANES as a local probe of electronic structure in large bridging ligand motifs, able to distinctly investigate the ligand-centered orbitals involved in metal-to-ligand and ligand-to-ligand electron transfer following light absorption.

Funder

Office of Science

Deutsche Forschungsgemeinschaft

Publisher

AIP Publishing

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