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Experimental and theoretical understanding on electrochemical activation and inactivation processes of Nb3O7(OH) for ambient electrosynthesis of NH3

机译:NH3环境电合成NB3O7(OH)电化学活化和灭活过程的实验与理论认识

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摘要

Deeply understanding the electrochemical activation and inactivation processes of an electrocatalyst is critically important for establishing a high-efficiency nitrogen reduction reaction (NRR) to synthesize an NH3 system. Here we report the utilization of a facile vapor-phase hydrothermal (VPH) method to directly grow ultrafine Nb3O7(OH) nanoparticles on commercial carbon fiber cloth (Nb3O7(OH)/CFC) for the NRR. The results demonstrate that the Nb3O7(OH)/CFC can afford an average NH3 yield rate of 622 mu g h(-1) mg(cat.)(-1) with a high faradaic efficiency (FE) of 39.9% at -0.4 V versus the reversible hydrogen electrode (RHE) in 0.1 M Na2SO4 electrolyte (pH = 6.1) within 30 min of the NRR, surpassing the performance of most recently reported aqueous-based NRR electrocatalysts. The experimental and theoretical calculation results reveal that the in situ electrochemically converted NbO from Nb3O7(OH) during the NRR is the catalytic active phase with a N-2 adsorption free energy of -0.97 eV; however with a reaction time over 30 min, the generated active *N atoms in the *N-NH3 -> *N + NH3 hydrogenation step during the NRR are thermodynamically favourable for binding to the oxygen vacancies of NbO to form oxygen-containing NbN0.64 with reduced N-2 adsorption free energy (-0.32 eV), resulting in significantly decreased NRR activity. Our studies suggest that although NbO possesses high NRR activity, it may not be a suitable NRR electrocatalyst, owing to easy formation of low active niobium oxynitride during the NRR.
机译:深度理解电化学激活和电催化剂的灭活方法对于建立高效氮还原反应(NRR)来合成NH 3系统是至关重要的。在这里,我们报告了利用容易蒸汽相水热(VPH)方法,直接在NRR上直接生长在商业碳纤维布(NB3O7(OH)/ CFC)上的超细NB3O7(OH)纳米颗粒。结果表明,Nb3O7(OH)/ CFC可以平均NH 3屈服率为622μg(-1)毫克(猫。)( - 1),高法效率(Fe)为-0.4 v,39.9%与NRR 30分钟内的0.1M Na 2 SO 4电解质(pH = 6.1)中的可逆氢电极(RHE)相比,超过最近报告的基于水性NRR电催化剂的性能。实验和理论计算结果表明,在NRR期间,原位电化学转化的NB3O7(OH)中的NBO是催化活性相,N-2吸附无功率为-0.97eV;然而,在30分钟内反应时间,NRR期间的* N-NH3 - > * N + NH 3氢化步骤中产生的活性* n原子是热动力学上的,用于结合NBO的氧空位以形成含氧NBNO。 64具有降低的N-2吸附无能量(-0.32eV),导致NRR活性显着降低。我们的研究表明,尽管NBO具有高NRR活性,但由于在NRR期间易于形成低活性氧氧化铌,因此可能不是合适的NRR电催化剂。

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    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Ctr Environm &

    Energy Nanomat Key Lab Mat Phys CAS Ctr Excellence Nanosci Inst Solid State Phys Hefei 230031 Anhui Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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