Max Planck Institute for Polymer Research, Mainz 55128, Germany.
School of Materials Science and Engineering, Jiangsu University, Zhenjiang 212013, Jiangsu, China.
J Am Chem Soc. 2023 Feb 15;145(6):3647-3655. doi: 10.1021/jacs.2c12933. Epub 2023 Feb 6.
Nitrogen-doped graphitic carbon materials hosting single-atom iron (Fe-N-C) are major non-precious metal catalysts for the oxygen reduction reaction (ORR). The nitrogen-coordinated Fe sites are described as the first coordination sphere. As opposed to the good performance in ORR, that in the oxygen evolution reaction (OER) is extremely poor due to the sluggish O-O coupling process, thus hampering the practical applications of rechargeable zinc (Zn)-air batteries. Herein, we succeed in boosting the OER activity of Fe-N-C by additionally incorporating phosphorus atoms into the second coordination sphere, here denoted as P/Fe-N-C. The resulting material exhibits excellent OER activity in 0.1 M KOH with an overpotential as low as 304 mV at a current density of 10 mA cm. Even more importantly, they exhibit a remarkably small ORR/OER potential gap of 0.63 V. Theoretical calculations using first-principles density functional theory suggest that the phosphorus enhances the electrocatalytic activity by balancing the *OOH/*O adsorption at the FeN sites. When used as an air cathode in a rechargeable Zn-air battery, P/Fe-N-C delivers a charge-discharge performance with a high peak power density of 269 mW cm, highlighting its role as the state-of-the-art bifunctional oxygen electrocatalyst.
氮掺杂石墨碳材料负载单原子铁(Fe-N-C)是氧还原反应(ORR)的主要非贵金属催化剂。氮配位的 Fe 位点被描述为第一配位层。与在 ORR 中表现出的良好性能相反,由于 O-O 偶联过程缓慢,其在析氧反应(OER)中的性能极差,从而阻碍了可充电锌(Zn)-空气电池的实际应用。在此,我们成功地通过将磷原子进一步引入第二配位层,即 P/Fe-N-C,来提高 Fe-N-C 的 OER 活性。所得材料在 0.1 M KOH 中表现出优异的 OER 活性,在 10 mA cm 的电流密度下的过电势低至 304 mV。更重要的是,它们表现出非常小的 ORR/OER 电位差为 0.63 V。使用第一性原理密度泛函理论的理论计算表明,磷通过平衡 FeN 位点上的 *OOH/*O 吸附来增强电催化活性。当用作可充电 Zn-空气电池的空气阴极时,P/Fe-N-C 提供了具有 269 mW cm 高峰值功率密度的充放电性能,突出了其作为先进的双功能氧电催化剂的作用。