 
 Journal of Inorganic Materials ›› 2023, Vol. 38 ›› Issue (7): 823-829.DOI: 10.15541/jim20220688
Special Issue: 【能源环境】氢能材料(202506)
• RESEARCH ARTICLE • Previous Articles Next Articles
					
													LI Guanglan( ), WANG Tianyu, LIU Yichen, LU Zhongfa
), WANG Tianyu, LIU Yichen, LU Zhongfa
												  
						
						
						
					
				
Received:2022-11-17
															
							
																	Revised:2023-01-19
															
							
															
							
																	Published:2023-02-01
															
							
																	Online:2023-02-07
															
						About author:LI Guanglan (1985-), female, PhD, associate professor. E-mail: guanglanli@dlut.edu.cn				
													Supported by:CLC Number:
LI Guanglan, WANG Tianyu, LIU Yichen, LU Zhongfa. Layered NiFeCo-LDH-Ti6C3.75 Catalyst: Preparation and Performance for Oxygen Evolution Reaction[J]. Journal of Inorganic Materials, 2023, 38(7): 823-829.
 
																													Fig. 5 (a) Total survey, high resolution (b) Ni2p and (c) Fe2p XPS spectra for NiFeCo-LDH-Ti6C3.75, NiFe LDH-Ti6C3.75 and NiFeCo-LDH catalysts, (d) Co2p XPS spectra for NiFeCo-LDH-Ti6C3.75 and NiFeCo-LDH catalysts
 
																													Fig. 6 Electrochemical performance of NiFeCo-LDH-Ti6C3.75, NiFe-LDH-Ti6C3.75, NiFeCo-LDH, and RuO2 catalysts (a) LSV curves, (b) overpotential at 20and 50 mA·cm-2, and (c) Tafel slopes of NiFeCo-DH-Ti6C3.75, NiFe LDH-Ti6C3.75, NiFeCo-LDH, and RuO2 catalysts; (d) EIS and (e) Cdl of NiFeCo-DH-Ti6C3.75, NiFe LDH-Ti6C3.75, and NiFeCo-LDH; (f) Accelerated aging curves of NiFeCo-LDH-Ti6C3.75 before and after 6000 cycles
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