来庆学

讲师 硕士生导师

个人信息

招生学科专业:
化学 -- 【招收硕士研究生】 -- 材料科学与技术学院
材料与化工 -- 【招收硕士研究生】 -- 材料科学与技术学院
学位:工学博士学位
性别:男
毕业院校:南京航空航天大学
学历:南京航空航天大学
所在单位:材料科学与技术学院
电子邮箱:

MOF-Based Metal-Doping-Induced Synthesis of Hierarchical Porous Cu-N/C Oxygen Reduction Electrocatalysts for Zn-Air Batteries

发表时间:2020-11-30 点击次数:
所属单位:材料科学与技术学院
发表刊物:SMALL
关键字:HIGH-PERFORMANCE ELECTROCATALYSTS NITROGEN-DOPED CARBON ORGANIC FRAMEWORK ACTIVE-SITES FUEL-CELLS GRAPHENE EFFICIENT CATALYSTS NANOCRYSTALS TEMPERATURE
摘要:A transition-metal-nitrogen/carbon (TM-N/C, TM = Fe, Co, Ni, etc.) system is a popular, nonprecious-metal oxygen reduction reaction (ORR) electrocatalyst for fuel cell and metal-air battery applications. However, there remains a lack of comprehensive understanding about the ORR electrocatalytic mechanism on these catalysts, especially the roles of different forms of metal species on electrocatalytic performance. Here, a novel Cu-N/C ORR electrocatalyst with a hybrid Cu coordination site is successfully fabricated with a simple but efficient metal-organic-framework-based, metal-doping-induced synthesis strategy. By directly pyrolyzing Cu-doped zeolitic-imidazolate-framework-8 polyhedrons, the obtained Cu-N/C catalyst can achieve a high specific surface area of 1182 m(2) g(-1) with a refined hierarchical porous structure and a high surface N content of 11.05 at%. Moreover, regulating the Cu loading can efficiently tune the states of Cu(II) and Cu-0, resulting in the successful construction of a highly active hybrid coordination site of N. Cu(II). Cu-0 in derived Cu-N/C catalysts. As a result, the optimized 25% Cu-N/C catalyst possesses a high ORR activity and stability in 0.1 m KOH solution, as well as excellent performance and stability in a Zn-air battery.
ISSN号:1613-6810
是否译文:
发表时间:2017-08-11
合写作者:Zhu, Junjie,Zhao, Yingxuan,梁彦瑜,何建平,Chen, Junhong
通讯作者:来庆学
发表时间:2017-08-11

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