Khan Muhammad Arif, Jian Cai, Javed Rida, Ye Daixin, Zhao Hongbin
School of Materials Science and Engineering, Shanghai University, Shanghai 200444, PR China.
School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Dongda Street, Xi 'an, PR China.
J Colloid Interface Sci. 2025 May;685:1077-1086. doi: 10.1016/j.jcis.2025.01.064. Epub 2025 Jan 27.
Heteroatom doping into the transition metal-based catalysts is an effective strategy to improve the oxygen reduction reaction (ORR) kinetics. Herein, we proposed a one-step, soft template assisted, and green method for the synthesis of Sulfur (S) doped single atom FeNC catalyst. XAFS demonstrated that the Fe active sites in the FeNSC were more likely to possess the Fe-N configuration. Density functional theory (DFT) calculations revealed the effect of S-doping into the single atom Fe-N symmetric structure, resulting in the delocalization of 3d electrons and asymmetric structure for the single atom FeNSC. The energy barrier of the rate-determining step decreased from 0.535 eV (for FeNC) to 0.474 eV for the FeNSC structure, indicating the possible good catalytic activity of the FeNSC catalyst. The following experiments demonstrated that the FeNSC catalyst showed an excellent ORR performance in both acidic medium with a half wave potential (E) of 0.81 V vs. RHE and basic medium with an E value of 0.93 V vs. RHE. The high ORR performance is validated by assembling a homemade Zinc-air battery (ZAB) using the single atom FeNSC as a cathode, showing a high power density of 240 mW cm. The synthesized single-atom FeNSC catalysts outperformed the state-of-the-art 20 % Pt/C catalyst. The combination of physical characterization, experimental results, and DFT calculations unveiled exceptional improvements in the ORR activity through the incorporation of the S atom into the Fe-N matrix. Our findings offer a pathway towards sustainable energy solutions, driving innovation in the field of green energy technologies.
将杂原子掺杂到过渡金属基催化剂中是改善氧还原反应(ORR)动力学的有效策略。在此,我们提出了一种一步法、软模板辅助的绿色方法来合成硫(S)掺杂的单原子FeNC催化剂。XAFS表明,FeNSC中的Fe活性位点更可能具有Fe-N构型。密度泛函理论(DFT)计算揭示了S掺杂到单原子Fe-N对称结构中的影响,导致单原子FeNSC的3d电子离域和不对称结构。速率决定步骤的能垒从0.535 eV(对于FeNC)降至FeNSC结构的0.474 eV,表明FeNSC催化剂可能具有良好的催化活性。随后的实验表明,FeNSC催化剂在酸性介质中半波电位(E)为0.81 V(相对于可逆氢电极,RHE)以及在碱性介质中E值为0.93 V(相对于RHE)时均表现出优异的ORR性能。通过使用单原子FeNSC作为阴极组装自制的锌空气电池(ZAB),验证了其高ORR性能,该电池显示出240 mW cm的高功率密度。合成的单原子FeNSC催化剂性能优于目前最先进的20% Pt/C催化剂。物理表征、实验结果和DFT计算的结合揭示了通过将S原子掺入Fe-N基质中,ORR活性有了显著提高。我们的研究结果为可持续能源解决方案提供了一条途径,推动了绿色能源技术领域的创新。