TY - JOUR
T1 - Recent Progress in Oxygen Electrocatalysts for Zinc–Air Batteries
AU - Yang, Dongjiang
AU - Zhang, Lijie
AU - Yan, Xuecheng
AU - Yao, Xiangdong
N1 - Publisher Copyright:
© 2017 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2017/12/11
Y1 - 2017/12/11
N2 - Zinc–air batteries (ZABs) have attracted extensive attention due to their remarkable high theoretical energy output. They represent one of the most promising future power sources. However, many barriers restrict their application on a large scale. One of the main challenges is the sluggish rates of the oxygen-reduction reaction (ORR) and oxygen-evolution reaction (OER), which govern the discharging and charging processes of the battery, respectively. Here, recent advances related to oxygen electrocatalyst materials for ZABs are discussed. Detailed discussions will focus on unifunctional ORR electrocatalysts and bifunctional ORR and OER electrocatalysts. Pt-based nanomaterials, as the best ORR electrocatalysts, possess the virtue of high activity, but have the disadvantages of high cost, scarcity, and poor stability. Thus, materials based on transition metals (alloys, metal oxides, metal nitrides, and spinel oxides) and metal-free materials are widely investigated as nonprecious ORR catalysts owing to their promising catalytic activities. As for bifunctional ORR and OER electrocatalysts, the following two categories are introduced: (i) metal-based materials, including single metal/metal-oxides-based materials and mixed-metal/metal-oxides-based materials; and (ii) metal-free materials. Finally, perspectives on the continuous research and limitation of the current ZAB technology are provided.
AB - Zinc–air batteries (ZABs) have attracted extensive attention due to their remarkable high theoretical energy output. They represent one of the most promising future power sources. However, many barriers restrict their application on a large scale. One of the main challenges is the sluggish rates of the oxygen-reduction reaction (ORR) and oxygen-evolution reaction (OER), which govern the discharging and charging processes of the battery, respectively. Here, recent advances related to oxygen electrocatalyst materials for ZABs are discussed. Detailed discussions will focus on unifunctional ORR electrocatalysts and bifunctional ORR and OER electrocatalysts. Pt-based nanomaterials, as the best ORR electrocatalysts, possess the virtue of high activity, but have the disadvantages of high cost, scarcity, and poor stability. Thus, materials based on transition metals (alloys, metal oxides, metal nitrides, and spinel oxides) and metal-free materials are widely investigated as nonprecious ORR catalysts owing to their promising catalytic activities. As for bifunctional ORR and OER electrocatalysts, the following two categories are introduced: (i) metal-based materials, including single metal/metal-oxides-based materials and mixed-metal/metal-oxides-based materials; and (ii) metal-free materials. Finally, perspectives on the continuous research and limitation of the current ZAB technology are provided.
KW - bifunctional electrocatalysts
KW - oxygen electrocatalysts
KW - oxygen-evolution reaction
KW - oxygen-reduction reaction
KW - zinc–air batteries
UR - https://www.scopus.com/pages/publications/85097380152
U2 - 10.1002/smtd.201700209
DO - 10.1002/smtd.201700209
M3 - 文献综述
AN - SCOPUS:85097380152
SN - 2366-9608
VL - 1
JO - Small Methods
JF - Small Methods
IS - 12
M1 - 1700209
ER -