Sun Jia, Du Lei, Sun Baoyu, Han Guokang, Ma Yulin, Wang Jiajun, Huo Hua, Du Chunyu, Yin Geping
School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, China.
ACS Appl Mater Interfaces. 2020 Jun 3;12(22):24717-24725. doi: 10.1021/acsami.0c03983. Epub 2020 May 18.
Perovskite oxides as bifunctional electrocatalysts toward oxygen reduction (ORR) and oxygen evolution reactions (OER) have been investigated for decades because of the flexible and adjustable electronic structures. For example, by optimizing the strength of the Co-O bond, the ORR and OER activity of a typical perovskite oxide, LaCoO, can be improved, but they are still unsatisfying. The insufficient insights into the effects of secondary metal dopants at the B-site on the electronic structure and activity, especially for ORR, significantly limit the R&D of bifunctional perovskite oxide catalysts. In this work, a series of LaMnCoO ( = 0, 0.25, 0.3, 0.35, 0.5, 1) catalysts are prepared by a polyol-assisted solvothermal method to investigate the structure-property relationships between the B-site metal substitution and the electrochemical performance of perovskite oxides catalysts. The optimized LaMnCoO catalyst demonstrates an enhanced half-wave potential of 0.72 V for ORR, 52 mV higher than that of the pristine LaCoO (0.668 V). Meanwhile, the OER overpotential of LaMnCoO catalyst is 416 mV, which is reduced by 64 mV compared to LaCoO (480 mV). It is revealed that the appropriate Mn dopant efficiently optimizes the covalency of Co-O bonds and significantly reduces the e orbit-filling electron from 1.23 of pristine LaCoO to 1.02 in LaMnCoO (very close to theoretical value 1). This work paves a new way to design and synthesize bifunctional perovskite oxide electrocatalyst for ORR and OER.
由于具有灵活且可调控的电子结构,钙钛矿氧化物作为用于氧还原(ORR)和析氧反应(OER)的双功能电催化剂已被研究了数十年。例如,通过优化Co-O键的强度,典型的钙钛矿氧化物LaCoO的ORR和OER活性可以得到提高,但仍不尽人意。对B位二次金属掺杂剂对电子结构和活性的影响缺乏足够的认识,特别是对于ORR,这显著限制了双功能钙钛矿氧化物催化剂的研发。在这项工作中,通过多元醇辅助溶剂热法制备了一系列LaMnCoO(= 0、0.25、0.3、0.35、0.5、1)催化剂,以研究B位金属取代与钙钛矿氧化物催化剂电化学性能之间的结构-性能关系。优化后的LaMnCoO催化剂在ORR中表现出增强的半波电位为0.72 V,比原始LaCoO(0.668 V)高52 mV。同时,LaMnCoO催化剂的OER过电位为416 mV,与LaCoO(480 mV)相比降低了64 mV。结果表明,适当的Mn掺杂有效地优化了Co-O键的共价性,并将e轨道填充电子从原始LaCoO的1.23显著降低到LaMnCoO中的1.02(非常接近理论值1)。这项工作为设计和合成用于ORR和OER的双功能钙钛矿氧化物电催化剂开辟了一条新途径。