Andrić Stevan, Milikić Jadranka, Sevim Melike, Santos Diogo M F, Šljukić Biljana
Faculty of Physical Chemistry, University of Belgrade, Belgrade, Serbia.
Current Affiliation at Center of Microelectronic Technologies, Institute of Chemistry, Technology and Metallurgy, National Institute of the Republic of Serbia, University of Belgrade, Belgrade, Serbia.
Front Chem. 2023 Aug 7;11:1244148. doi: 10.3389/fchem.2023.1244148. eCollection 2023.
Oxygen evolution reaction (OER) represents the efficiency-limiting reaction in water electrolyzers, metal-air batteries, and unitized regenerative fuel cells. To achieve high-efficiency OER in alkaline media, we fabricated three novel electrocatalysts by the assembly of as-prepared CoPt alloy nanoparticles (NPs) on three different carbon-based support materials: reduced graphene oxide (CoPt/rGO), mesoporous graphitic carbon nitride (CoPt/mpg-CN), and commercial Ketjenblack carbon (CoPt/KB). Voltammetry studies revealed that CoPt/rGO electrocatalyst provided lower OER overpotentials accompanied by higher currents and specific current density values than the other two studied materials. Moreover, CoPt/rGO outperformed commercial CoPt/C electrocatalysts in terms of notably higher specific current densities. Additionally, it was found that CoPt/rGO electrocatalyst activity increases with increasing temperature up to 85°C, as suggested by the increase in the exchange current density. Electrochemical impedance spectroscopy studies of three electrocatalysts in OER revealed similar charge transfer resistance, although CoPt/rGO provided a higher current density. The main issue observed during long-term chronoamperometry and chronopotentiometry studies is the materials' instability under OER polarization conditions, which is still to be tackled in future work.
析氧反应(OER)是水电解槽、金属空气电池和一体化再生燃料电池中的效率限制反应。为了在碱性介质中实现高效的析氧反应,我们通过将制备好的CoPt合金纳米颗粒(NPs)组装在三种不同的碳基载体材料上,制备了三种新型电催化剂:还原氧化石墨烯(CoPt/rGO)、介孔石墨相氮化碳(CoPt/mpg-CN)和商用科琴黑碳(CoPt/KB)。伏安法研究表明,与其他两种研究材料相比,CoPt/rGO电催化剂具有更低的析氧过电位,同时伴随着更高的电流和比电流密度值。此外,CoPt/rGO在比电流密度显著更高方面优于商用CoPt/C电催化剂。此外,正如交换电流密度的增加所表明的那样,发现CoPt/rGO电催化剂的活性随着温度升高至85°C而增加。对三种电催化剂在析氧反应中的电化学阻抗谱研究表明,尽管CoPt/rGO提供了更高的电流密度,但电荷转移电阻相似。在长期计时电流法和计时电位法研究中观察到的主要问题是材料在析氧反应极化条件下的不稳定性,这仍有待在未来的工作中解决。