电催化剂
限制电流
催化作用
电化学
氧还原反应
甲醇
氧气
氧还原
电子转移
化学工程
燃料电池
一氧化碳中毒
热解
限制
化学
材料科学
纳米技术
电极
物理化学
有机化学
工程类
机械工程
作者
Yuan Yang,Qing Zhang,Yinling Li,Luyao Lv,Yan Hou,Ge Li,Jing Fu,Lin Yang,Zhengyu Bai
摘要
Abstract Rational design of hierarchically structured electrocatalysts is particularly important for electrocatalytic oxygen reduction reaction (ORR). Here, ZIF‐67 crystals are stringed on core–shell Ag@C nanocables using a coordination‐modulated process. Upon pyrolysis, Ag@C strings of Co nanoparticles embedded with three‐dimensional porous carbon with beads‐on‐string hierarchical structures are developed. Due to the advantages of the rich electrochemical active sites of Co‐based “beads” and the efficient electron transfer pathways via Ag@C “strings,” the resultant NH 3 –Ag@C@Co–N–C‐700 catalyst shows an improved electrocatalytic activity toward ORR. NH 3 –Ag@C@Co–N–C‐700 shows a high onset potential of 0.99 V versus RHE, a high half‐wave potential of 0.88 V versus RHE, and a large limiting current of 5.8 mA cm −2 , which are better than those of commercial Pt/C electrocatalysts. Additionally, the NH 3 –Ag@C@Co–N–C‐700 catalyst shows high stability and preeminent methanol tolerance, which makes NH 3 –Ag@C@Co–N–C‐700 a promising catalyst for oxygen electrocatalysis in fuel cell applications.
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