TY - JOUR
T1 - In situexsolved Co nanoparticles coupled on LiCoO2nanofibers to induce oxygen electrocatalysis for rechargeable Zn-air batteries
AU - Gui, Liangqi
AU - Liu, Yuzhou
AU - Zhang, Jing
AU - He, Beibei
AU - Wang, Qing
AU - Zhao, Ling
N1 - Publisher Copyright:
© The Royal Society of Chemistry 2020.
PY - 2020/10/14
Y1 - 2020/10/14
N2 - Layered lithium cobalt oxide, LiCoO2(LCO), is a promising catalyst for oxygen evolution reaction (OER) and oxygen reduction reaction (ORR); however, its bifunctional activity is still far from desirable. Here, a novel heterointerface of Co@LCO nanofibers (Co@LCO-NFs) is developedviaan elegantin situexsolution approach to promote bifunctionality. Thisin situexsolution promises improved electrical conductivity, rich oxygen vacancies, and in particular a modulated electronic structure, thereby demonstrating a substantially enhanced bifunctional activity. Density functional theory calculations further reveal that the synergistic coupling of LCO and Co results in strengthened covalency of Co-O and facilitated OER/ORR kinetics. As a result, an assembled Zn-air battery using the Co@LCO-NFs electrode delivers high peak power density with competitive cycling stability, favorably outperforming the benchmark Pt/C-IrO2based batteries. This protocol provides new insights into designing heterostructured bifunctional catalysts for related energy conversion and storage devices.
AB - Layered lithium cobalt oxide, LiCoO2(LCO), is a promising catalyst for oxygen evolution reaction (OER) and oxygen reduction reaction (ORR); however, its bifunctional activity is still far from desirable. Here, a novel heterointerface of Co@LCO nanofibers (Co@LCO-NFs) is developedviaan elegantin situexsolution approach to promote bifunctionality. Thisin situexsolution promises improved electrical conductivity, rich oxygen vacancies, and in particular a modulated electronic structure, thereby demonstrating a substantially enhanced bifunctional activity. Density functional theory calculations further reveal that the synergistic coupling of LCO and Co results in strengthened covalency of Co-O and facilitated OER/ORR kinetics. As a result, an assembled Zn-air battery using the Co@LCO-NFs electrode delivers high peak power density with competitive cycling stability, favorably outperforming the benchmark Pt/C-IrO2based batteries. This protocol provides new insights into designing heterostructured bifunctional catalysts for related energy conversion and storage devices.
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U2 - 10.1039/d0ta07362h
DO - 10.1039/d0ta07362h
M3 - Article
AN - SCOPUS:85092427490
SN - 2050-7488
VL - 8
SP - 19946
EP - 19953
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 38
ER -