 
	 
	Chem. J. Chinese Universities ›› 2016, Vol. 37 ›› Issue (8): 1415.doi: 10.7503/cjcu20160173
• Articles Inorganic Chemistry • Previous Articles Next Articles
					
													DU Shichao1, REN Zhiyu2,*( ), WU Jun2, FU Honggang2,*(
), WU Jun2, FU Honggang2,*( )
)
												  
						
						
						
					
				
Received:2016-03-23
															
							
															
							
															
							
																											Online:2016-07-14
																								
							
																	Published:2016-07-14
															
						Contact:
								REN Zhiyu,FU Honggang   
																	E-mail:zyren@hlju.edu.cn;fuhg@vip.sina.com
																					Supported by:CLC Number:
TrendMD:
DU Shichao,REN Zhiyu,WU Jun,FU Honggang. Ni-Fe LDH/Reduced Graphene Oxide as Catalyst for Oxygen Evolution Reaction[J]. Chem. J. Chinese Universities, 2016, 37(8): 1415.
 
																													Fig.2 Photos of colloidal solutions of exfoliated nanosheets Tyndall effect was visible when irradiated with a laserbeam. a. Ni-Fe(1∶2) LDH; b. Ni-Fe(1∶1) LDH; c. Ni-Fe(2∶1) LDH; d. Ni-Fe(5∶1) LDH; e. Ni-Fe(10∶1) LDH; f. Ni(OH)2.
 
																													Fig.4 Typical TEM(A, B) and HRTEM(C, D) images of the exfoliated Ni-Fe(5∶1) LDH/rGO composite (B) is the amplification image of the corresponding dotted box in (A); (C) and (D) are the amplification images of the corresponding dotted box in (B).
 
																													Fig.6 Polarization curves of bulk(a) and exfoliated(b) Ni-Fe(10∶1) LDH(A) and exfoliated Ni-Fe(1∶2) LDH(a), Ni-Fe(1∶1) LDH(b), Ni-Fe(2∶1) LDH(c), Ni-Fe(5∶1) LDH(d), Ni-Fe(10∶1) LDH(e), Ni(OH)2(f)(B) in 1 mol/L KOH
 
																													Fig.7 Polarization curves(A) and chronopotentiometry(B) of exfoliated Ni-Fe(10∶1) LDH(a) and NiFe(10∶1) LDH/rGO(b) The inset in (A) shows the Tafel plots; the inset in (B) shows the electrochemical impedance spectra.
| Material | Onset potential/ V(vs. RHE) | Potential at 10 mA·cm-2/ V(vs. RHE) | Slope of Tafel plot/ (mV·dec-1) | Ref. | 
|---|---|---|---|---|
| NiFe LDH/CNT | 1.500 | 35 | [ | |
| Exfoliated NiFe LDH | 1.493 | 1.532 | 40 | [ | 
| NiCo LDH/CP* | 1.535 | 1.597 | 40 | [ | 
| NG-NiCo LDH | 1.580 | 614 | [ | |
| CoNi LDH | 1.590 | [ | ||
| NiCo LDH/Ni foam | 1.520 | 1.650 | 113 | [ | 
| Ni2/3Fe1/3-rGO | 1.440 | 1.470 | 40 | [ | 
| NiCo2O4 nanosheets | 1.550 | 30 | [ | |
| Ni0.6Co2.4O4/Ni foil | 1.570 | 1.760 | [ | |
| Ni-NG | 1.550 | 188 | [ | |
| Exfoliated Ni-Fe LDH | 1.470 | 1.530 | 108 | This work | 
| Exfoliated Ni-Fe LDH/rGO | 1.470 | 1.515 | 85 | This work | 
Table 1 Comparison of catalytic performance of exfoliated Ni-Fe LDH/rGO to Fe,Ni-based LDHs and oxides
| Material | Onset potential/ V(vs. RHE) | Potential at 10 mA·cm-2/ V(vs. RHE) | Slope of Tafel plot/ (mV·dec-1) | Ref. | 
|---|---|---|---|---|
| NiFe LDH/CNT | 1.500 | 35 | [ | |
| Exfoliated NiFe LDH | 1.493 | 1.532 | 40 | [ | 
| NiCo LDH/CP* | 1.535 | 1.597 | 40 | [ | 
| NG-NiCo LDH | 1.580 | 614 | [ | |
| CoNi LDH | 1.590 | [ | ||
| NiCo LDH/Ni foam | 1.520 | 1.650 | 113 | [ | 
| Ni2/3Fe1/3-rGO | 1.440 | 1.470 | 40 | [ | 
| NiCo2O4 nanosheets | 1.550 | 30 | [ | |
| Ni0.6Co2.4O4/Ni foil | 1.570 | 1.760 | [ | |
| Ni-NG | 1.550 | 188 | [ | |
| Exfoliated Ni-Fe LDH | 1.470 | 1.530 | 108 | This work | 
| Exfoliated Ni-Fe LDH/rGO | 1.470 | 1.515 | 85 | This work | 
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