Electrocatalytic hydrogenation (e -H) provides a sustainable route for converting unsaturated organic substrates under mild conditions using renewable electricity as the driving force. Here, we report an MOF-derived cobalt catalyst for the e -H of acetone and pyridine. A new two-dimensional cobalt metal-organic framework, Co-L0-NS, composed of Co(II) nodes and polyaromatic carboxylate linkers, was synthesized as nanosheets and used as a precursor to generate the active catalyst under cathodic bias. Electrochemical pretreatment induces controlled framework reconstruction to form MD-Cat, a highly dispersed, structurally disordered, Co(OH)2-rich nanocluster material. MD-Cat catalyzes the e -H of acetone to isopropanol with nearly quantitative Faradaic efficiency at optimized potentials and promotes pyridine hydrogenation to piperidine with up to 50% Faradaic efficiency. Comparative studies with electrodeposited cobalt, commercial cobalt nanoparticles, and bulk Co(OH)2 show that the MOF-derived catalyst exhibits superior current densities and product selectivity, which we attribute to its nanoscale morphology and hydroxylated cobalt environment. In situ Co K-edge XAS, XPS, PXRD, ATR-SEIRAS, and STEM analyses indicate that Co remains predominantly in the +2 oxidation state during catalysis while undergoing structural reorganization. Tafel analysis supports a PCET-type mechanism for acetone hydrogenation; while DFT calculations suggest that the Co/Co(OH)2 interface suppresses HER by weakening H* binding while preserving organic-substrate activation. These results highlight MOF-templated electrochemical reconstruction as a promising approach for designing selective e -H catalysts, not only by increasing catalyst accessibility through nanostructuring but also by enabling the formation of unique catalytic motifs that would otherwise be difficult to access using traditional methods.
B. K. Behera, Xin Zheng, Haomiao Xie et al.· Journal of the American Chem...· 0 citations
Metal–organic frameworks (MOFs) can exhibit pronounced negative thermal expansion (NTE) through thermal population of distortions that contract the lattice. In conventional framework NTE, these distortions are dynamic, involving transverse vibrations of bridging ligands; however, in Zr-based MOFs, a distinct mechanism for NTE has recently emerged that involves static distortion of Zr6-oxo cluster nodes. Here, we show that MOF-808, a Zr-based MOF with 6-connected Zr6-oxo nodes, exhibits colossal NTE with a volumetric coefficient of thermal expansion (CTE) whose magnitude exceeds 600 × 10–6 K–1, more than six times larger than existing benchmark NTE materials. In situ synchrotron X-ray scattering, combining powder diffraction and pair distribution function (PDF) analyses, shows that this large lattice contraction is coupled to an increasing population of a distorted Zr-node state, with pronounced thermal hysteresis and ramp rate dependencies reflecting frustration of the node distortions within the framework. Quantitative analysis of the relationship between lattice contraction and node distortion shows that the coupling varies and depends on both the temperature and the capping ligand coordinated at the node. We propose that the extreme NTE in MOF-808 reflects an amplified form of the node-distortion NTE mechanism, in which lower, anisotropic node connectivity preferentially orients the elongated node axes toward the pores while aligning the compressed node axis with framework-connected directions, maximizing the lattice contraction.
Jan Hofmann, Ayman Roslend, Jack G. Ajello et al.· Journal of the American Chem...· 0 citations