Polarized Cu-Bi Site Pairs for Non-Covalent to Covalent Interaction Tuning toward N<sub>2</sub> Photoreduction.
basic_science · Level V
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- Record sourced from PubMed, PMID 35863016.
- Also identified by DOI 10.1002/adma.202204959.
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Abstract
A universal atomic layer confined doping strategy is developed to prepare Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> materials incorporating isolated Cu atoms. The local polarization can be created along the CuOBi atomic interface, which enables better electron delocalization for effective N<sub>2</sub> activation. The optimized Cu-Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> atomic layers show 5.3× and 88.2× improved photocatalytic nitrogen fixation activity than Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> atomic layer and bulk Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> , respectively, with the NH<sub>3</sub> generation rate reaching 291.1 µmol g<sup>-1</sup> h<sup>-1</sup> in pure water. The polarized Cu-Bi site pairs can increase the non-covalent interaction between the catalyst's surface and N<sub>2</sub> molecules, then further weaken the covalent bond order in NN. As a result, the hydrogenation pathways can be altered from the associative distal pathway for Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> to the alternating pathway for Cu-Bi<sub>24</sub> O<sub>31</sub> Br<sub>10</sub> . This strategy provides an accessible pathway for designing polarized metal site pairs or tuning the non-covalent interaction and covalent bond order.