Application of Carbon-Based Oxygen Evolution Reaction …
11
Conclusion
To solve the problem of high energy consumption of zinc electrodeposition, especially the high overpotential of anodic oxygen evolution reaction, an electrocatalyst
with a low OER overpotential of 389 mV was prepared in this paper, which provided
a new idea for the electrocatalytic active layer in the electrode materials for zinc
electrodeposition.
Compared with the traditional industrial anode, the active catalyst shows superior
performance in electrowinning. Indicated that Amino-HNC has the potential to be
used as an electric catalyst in the zinc electrodeposition system. However, the use
of the Amino-HNC catalyst should be further explored and optimized. In the subsequent promotion and application, it can be combined with metal materials to prepare
composite electrode materials to improve their mechanical properties and working
life.
References
1. Lu J, Dreisinger D, Glück T (2014) Manganese electrodeposition—a literature review.
Hydrometallurgy 141:105–116
2. Li Y, Jiang LX, Lv XJ et al (2011) Oxygen evolution and corrosion behaviors of co-deposited
Pb/Pb-MnO 2 composite anode for electrowinning of nonferrous metals. Hydrometallurgy
109(3–4):252–257
3. Clancy M, Bettles CJ, Stuart A et al (2013) The influence of alloying elements on the
electrochemistry of lead anodes for electrowinning of metals: a review. Hydrometallurgy
131–132:144–157
4. Zhong X, Yu X, Jiang L et al (2015) Electrochemical behavior of Pb–Ag–Nd alloy during pulse
current polarization in H 2 SO 4 solution. T Nonferr Metal Soc 25(5):1692–1698
5. Zhao M, Li H, Li W et al (2020) Ru-doping enhanced electrocatalysis of metal-organic framework nanosheets toward overall water splitting. Chem-Eur J. https://doi.org/10.1002/chem.202
002072
6. Hu F, Zhu S, Chen S et al (2017) Amorphous metallic NiFeP: a conductive bulk material
achieving high activity for oxygen evolution reaction in both alkaline and acidic media. Adv
Mater 29(32):1606570
7. Ahmed ATA, Hou B, Chavan HS et al (2018) Self-assembled nanostructured CuCo 2 O 4 for
electrochemical energy storage and the oxygen evolution reaction via morphology engineering.
Small 14:1800742
8. Reier T, Oezaslan M, Strasser P (2012) Electrocatalytic oxygen evolution reaction (OER) on
Ru, Ir, and Pt catalysts: a comparative study of nanoparticles and bulk materials. ACS Catal
2(8):1765–1772
9. Lee SW, Baik C, Kim TY et al (2019) Three-dimensional mesoporous Ir–Ru binary oxides
with improved activity and stability for water electrolysis. Catal Today 352:39–46
10. Liu ZC, Zhang G, Zhang K et al (2018) Facile dispersion of nanosized NiFeP for highly
effective catalysis of oxygen evolution reaction. ACS Sustain Chem Eng 6(6):7206–7211
11. Cheng N, Liu Q, Tian J et al (2015) Acidically oxidized carbon cloth: a novel metal-free oxygen
evolution electrode with high catalytic activity. Chem Commun 51(9):1616–1619
12. Zhao X, Su H, Cheng WR et al (2019) Operando insight into the oxygen evolution kinetics on
the metal-free carbon-based electrocatalyst in an acidic solution. ACS Appl Mater Interfaces
11(38):34854–34861
11
Conclusion
To solve the problem of high energy consumption of zinc electrodeposition, especially the high overpotential of anodic oxygen evolution reaction, an electrocatalyst
with a low OER overpotential of 389 mV was prepared in this paper, which provided
a new idea for the electrocatalytic active layer in the electrode materials for zinc
electrodeposition.
Compared with the traditional industrial anode, the active catalyst shows superior
performance in electrowinning. Indicated that Amino-HNC has the potential to be
used as an electric catalyst in the zinc electrodeposition system. However, the use
of the Amino-HNC catalyst should be further explored and optimized. In the subsequent promotion and application, it can be combined with metal materials to prepare
composite electrode materials to improve their mechanical properties and working
life.
References
1. Lu J, Dreisinger D, Glück T (2014) Manganese electrodeposition—a literature review.
Hydrometallurgy 141:105–116
2. Li Y, Jiang LX, Lv XJ et al (2011) Oxygen evolution and corrosion behaviors of co-deposited
Pb/Pb-MnO 2 composite anode for electrowinning of nonferrous metals. Hydrometallurgy
109(3–4):252–257
3. Clancy M, Bettles CJ, Stuart A et al (2013) The influence of alloying elements on the
electrochemistry of lead anodes for electrowinning of metals: a review. Hydrometallurgy
131–132:144–157
4. Zhong X, Yu X, Jiang L et al (2015) Electrochemical behavior of Pb–Ag–Nd alloy during pulse
current polarization in H 2 SO 4 solution. T Nonferr Metal Soc 25(5):1692–1698
5. Zhao M, Li H, Li W et al (2020) Ru-doping enhanced electrocatalysis of metal-organic framework nanosheets toward overall water splitting. Chem-Eur J. https://doi.org/10.1002/chem.202
002072
6. Hu F, Zhu S, Chen S et al (2017) Amorphous metallic NiFeP: a conductive bulk material
achieving high activity for oxygen evolution reaction in both alkaline and acidic media. Adv
Mater 29(32):1606570
7. Ahmed ATA, Hou B, Chavan HS et al (2018) Self-assembled nanostructured CuCo 2 O 4 for
electrochemical energy storage and the oxygen evolution reaction via morphology engineering.
Small 14:1800742
8. Reier T, Oezaslan M, Strasser P (2012) Electrocatalytic oxygen evolution reaction (OER) on
Ru, Ir, and Pt catalysts: a comparative study of nanoparticles and bulk materials. ACS Catal
2(8):1765–1772
9. Lee SW, Baik C, Kim TY et al (2019) Three-dimensional mesoporous Ir–Ru binary oxides
with improved activity and stability for water electrolysis. Catal Today 352:39–46
10. Liu ZC, Zhang G, Zhang K et al (2018) Facile dispersion of nanosized NiFeP for highly
effective catalysis of oxygen evolution reaction. ACS Sustain Chem Eng 6(6):7206–7211
11. Cheng N, Liu Q, Tian J et al (2015) Acidically oxidized carbon cloth: a novel metal-free oxygen
evolution electrode with high catalytic activity. Chem Commun 51(9):1616–1619
12. Zhao X, Su H, Cheng WR et al (2019) Operando insight into the oxygen evolution kinetics on
the metal-free carbon-based electrocatalyst in an acidic solution. ACS Appl Mater Interfaces
11(38):34854–34861
