Materials Science and Engineering Program & Texas Materials Institute, The University of Texas at Austin, Austin, TX 78712, USA.
Department of Energy Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Korea.
Molecules. 2021 Jan 8;26(2):277. doi: 10.3390/molecules26020277.
For rechargeable metal-air batteries, which are a promising energy storage device for renewable and sustainable energy technologies, the development of cost-effective electrocatalysts with effective bifunctional activity for both oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) has been a challenging task. To realize highly effective ORR and OER electrocatalysts, we present a hybrid catalyst, CoO-infiltrated LaSrMnO (LSM@CoO), synthesized using an electrospray and infiltration technique. This study expands the scope of the infiltration technique by depositing 18 nm nanoparticles on unprecedented ~70 nm nano-scaffolds. The hybrid LSM@CoO catalyst exhibits high catalytic activities for both ORR and OER (7 times, ~1.5 times, and ~1.6 times higher than LSM, CoO, and IrO, respectively) in terms of onset potential and limiting current density. Moreover, with the LSM@CoO, the number of electrons transferred reaches four, indicating that the catalyst is effective in the reduction reaction of O via a direct four-electron pathway. The study demonstrates that hybrid catalysts are a promising approach for oxygen electrocatalysts for renewable and sustainable energy devices.
对于可充电金属空气电池,作为可再生和可持续能源技术有前途的储能设备,开发具有有效氧还原反应(ORR)和氧析出反应(OER)双功能活性的具有成本效益的电催化剂是一项具有挑战性的任务。为了实现高效的 ORR 和 OER 电催化剂,我们提出了一种使用电喷雾和渗透技术合成的 CoO 渗透 LaSrMnO(LSM@CoO)的混合催化剂。这项研究通过在前所未有的 70nm 纳米支架上沉积18nm 纳米粒子,扩展了渗透技术的范围。在起始电位和极限电流密度方面,混合 LSM@CoO 催化剂对 ORR 和 OER 均表现出高催化活性(分别比 LSM、CoO 和 IrO 高7 倍、1.5 倍和1.6 倍)。此外,在 LSM@CoO 中,转移的电子数达到 4,表明催化剂通过直接的四电子途径有效地还原 O。该研究表明,混合催化剂是可再生和可持续能源设备中氧电催化剂的一种很有前途的方法。