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- Ammonia Synthesis (1)
- Coordination polymers (1)
- Electrocatalysis (1)
- Electrochemisty (1)
- Framework Materials (1)
- Green chemistry (1)
- Mechanochemistry (1)
- Nitrate Reduction (1)
- Phosphonate ligand (1)
- Proton conduction (1)
Organisationseinheit der BAM
The development of thermally stable solid-state proton conductors (SSPCs) is crucial for advancing energy-conversion devices such as proton-exchange membrane fuel cells (PEMFCs). In this work, we report the solvothermal synthesis and characterization of a novel, 1D Cu(I) coordination polymer, {Cu(ADP)0.5(BPY)}n (BAM-5), based on anthracenediylphosphonate (H2ADP) and 4,40 -bipyridine (BPY). Single-crystal X-ray diffraction revealed that BAM-5 crystallizes in the triclinic space group P1 and shows a 1D ladder structure connected by the H2ADP and organic BPY linkers, which is assembled into a 2D layer via O−H···O hydrogen bonding interactions between uncoordinated oxygen and the O−H of the phosphonate group. Thermogravimetric and dynamic water sorption analysis demonstrated exceptional thermal robustness of BAM-5 until 230°C and notable water affinity. Proton conductivity measurements found increasing proton conductive properties with increasing temperature and relative humidity.The latter is correlated with the material’s water uptake since the structure itself does not contain any permanent lattice water molecules. A maximum proton conductivity of 6.6 × 10−6 S cm−1 was found at 80°C and 98% RH. To the best of our knowledge, no dense, nonporous 1D coordination polymer without lattice or coordinated solvent molecules has shown comparable proton conductivity. The high activation energy suggests a combination of both, a Grotthuss-type proton hopping through the hydrogenbonded framework, and a vehicular process, in which protons are carried along with absorbed water molecules.
Mechanochemistry has emerged as a transformative approach in sustainable chemistry, offering a solvent-free and energy-efficient pathway for chemical synthesis. By utilizing mechanical force—typically through ball milling, grinding, or other shear-driven methods, reactions can proceed without the extensive use of harmful solvents, reducing waste and environmental impact. This poster explores the principles, methodologies, and applications of mechanochemistry in developing greener synthetic routes, with a focus on pharmaceutical and materials science applications. Key advantages, including reduced reaction times, enhanced selectivity, and improved atom economy, will be highlighted alongside challenges such as scalability. By presenting mechanochemistry as a frontier technology at the intersection of chemistry, materials science, and environmental stewardship, this work invites dialogue among students and academics about its future in sustainable innovation.
The electrocatalytic reduction of nitrate to ammonia offers a sustainable alternative to the energy-intensive Haber-Bosch process while simultaneously addressing the pressing issue of nitrate pollution in water sources. Developing efficient catalysts for this reaction is therefore vital for both environmental remediation and green ammonia production. Framework materials such as metal-organic frameworks (MOFs), covalent organic frameworks (COFs), and coordination polymers present an emerging class of electrocatalytic materials due to their high surface area, tunable porosity, and structural modularity. Their ability to incorporate diverse metal centers and functional groups makes them promising candidates for selective and efficient nitrate reduction. In order to change and improve catalytic properties, different synthesis strategies can be pursued, such as metal alloying or calcination under different conditions. To fully understand and optimize these materials, advanced characterization techniques are essential to correlate structural features with catalytic performance, alongside in-situ methods for real-time mechanistic insights.