The progress of fuel cells has triggered a recent upsurge of the development of efficient electrocatalysts for the oxygen reduction reaction (ORR) [1]. Such electrocatalysts are generally carbon-supported Pt or Pt-based alloy nanoparticles [2]. However,critical challenges,such as high cost and scarcity [3],have precluded the large-scale commercial application of proton exchange membrane fuel cells.
Recent efforts to replace Pt have led to the development of various non-precious electrocatalysts for the ORR [4,5],in which N-doped carbon materials,including vertically aligned carbon nanotubes [6],ordered mesoporous graphitic carbon [7],and graphene [8,9],have been widely investigated. However,the methods used to dope carbon materials with N,such as chemical vapor deposition [10],nitrogen plasma treatment [11],and thermal annealing [4],are generally time-consuming,resulting in a low production efficiency. A highly efficient,low-cost doping method needs to be developed.
Herein,we use graphene prepared by Hummers' method [12] to fabricate N-doped graphene (NG) by microwave heating in an ammonia environment. Within just tens of seconds,NG samples with a nitrogen content ranging from 4.05 wt% to 5.47 wt% are obtained. The performance of the NG samples in the ORR in alkaline solution is compared with that of non-doped graphene and commercial Pt/C catalyst. The results imply that the developed N-doping method could be an efficient,low-cost route to prepare NG,which may contribute to the commercialization of fuel cells.
Graphite oxide (GO) was obtained from graphite powder using a modified Hummers’ method [12],which involved three steps: pre-oxidation of natural graphite with concentrated H2SO4 and KMnO4,re-oxidation with H2O2,and exfoliation by sonication. Graphene was prepared by expanding GO by microwave heating for 60 s under N2 flow (200 mL/min),and then NG was synthesized via microwave heating for different periods (2,5,10,and 30 s) under NH3 atmosphere (200 mL/min) to produce samples denoted as NG-2,NG-5,NG-10,and NG-30,respectively.
Transmission electron microscopy (TEM) images were obtained with a field-emission transmission electron microscope (Tecnai G2 FEI). The elemental composition of the samples was determined by CHN elemental analysis (Elementar Vario MICRO). X-ray photoelectron spectroscopy (XPS,ESCALAB 250) was used to characterize the surface composition of the samples. Raman spectra were measured by micro-Raman analysis (JY HR800).
The ORR activity of the NG samples was evaluated in KOH solution (0.1mol/L) with a rotating ring-disk electrode (GC disk and Pt ring,Pine Instruments),coupled with a bipotentiostat (ACM). Pt foil and a Hg/HgO (1.0mol/L KOH solution) electrode were used as the counter and reference electrodes,respectively. The potentials presented in this study were referred to SHE. A mixture of catalyst (6 mg),ethanol (1800 μL),and 5 wt% Nafion solution (200 μL) was ultrasonically blended for 30 min. Then,40 μL of this suspension (loading: 0.485 mg/cm2) was added dropwise onto the working electrode (0.2475 cm2). Linear sweep voltammetry (LSV) measurements were recorded by scanning the potential from 0.3 to −0.7 V vs SHE at a scan rate of 5 mV/s using an electrode rotation rate of 1600 rpm. The ring potential was maintained at 0.7 V vs SHE to detect hydrogen peroxide.
LSVs of graphene,NGs and 20% Pt/C in KOH solution (0.1mol/L) saturated with oxygen are shown in Fig. 1(a). For graphene,NG-2,NG-5,NG-10,NG-30 and 20% Pt/C,the onset potentials for the ORR (EORR) were 0.083,0.108,0.137,0.170,0.170,and 0.211 V,respectively. N doping had a marked effect on the ORR performance of graphene; EORR gradually increased with the microwave heating time. Little difference can be found for the ORR curves once the microwave time exceeded 10 s.
The curves in Fig. 1(b) reveal that the numbers of electrons transferred per oxygen molecule (n) at −0.4 V for G,NGs and 20% Pt/C were 2.88,3.03–3.30,and 3.87,respectively,according to the following equation [13]:
n = 4ID/(ID+(IR/n)).
The ring/disk current ratio (IR/ID) was obtained from the data in Fig. 1(a) and (b). These results suggest that the reduction processes over NGs favored a four-electron over a two-electron pathway.
TEM images of NG-10 are presented in Fig. 2. These TEM images revealed a voile-like structure (Fig. 2(a)),and the cross-sectional view of the edge of NG-10 showed that it contained only a few layers (typically less than 10) of graphene sheets (Fig. 2(b) and (c)). This suggests that the NG samples had a similar sheet structure to graphene and the layer number of the NGs was quite low.
Figure 3 shows Raman spectra measured for G and NG-10. There were two peaks in both the Raman spectra of G and NG-10,which were attributed to the G band at around 1600 cm–1 and D band at 1360 cm–1,respectively [14]. It is known that the D band is related to disordered and defective carbon structure,while the G band corresponds to the well-ordered graphite structure [15]. The intensity ratio of the D band to the G band (ID/IG) increased from 0.79 for graphene to 0.82 for NG-10,indicating that incorporation of heterogeneous N increased the number of structural defects.
The chemical composition of graphene and NGs was then characterized by elemental analysis,as illustrated in Table 1. Through microwave heating,the O content of graphene decreased from 19.2 wt% to around 5 wt%,and the N content increased from 0 to over 5 wt%. These changes were attributed to the addition of NH3 to replace residual oxygenic functional groups or C atoms of the graphene network [16] during microwave heating. The N-doping process by microwave heating required only several seconds (2–30 s),which is much less time than thermal annealing (30 min) [4],and a considerable advantage compared with previous methods.
Successful N-doping was also proven by XPS analysis,as shown in Fig. 4(a). Peaks at about 284,400,and 532.6 eV could be assigned to the binding energy of C 1 s,N 1 s,and O 1 s,respectively. To further investigate the bonding configurations of N atoms and their influence on ORR efficiency,high-resolution N 1 s XPS spectra of NGs were measured. As illustrated in Fig. 4(c)–(f),the peaks at around 397.9,399.9,and 401.2 eV could be attributed to pyridinic N,pyrrolic N and graphite N,respectively [17]. Table 1 presents the elemental composition of pyridinic N,pyrrolic N and graphite N in the NG samples determined from XPS analysis. As shown in Fig. 4(b),as microwave heating time increased,the content of pyrrolic N and graphite N gradually increased,and that of pyridine N decreased. However,EORR showed a strong dependence on the content of graphite N. Both EORR and graphite N content increased gradually with microwave time from 2 to 10 s. However,NG-10 and NG-30 had almost same EORR and graphite N content. This suggests that graphite N was gradually doped into the graphene network during microwave heating,and became saturated when the microwave heating time exceeded 10 s. It could be concluded that not all N doped into graphene has a marked effect on the ORR; that is,only the graphite N plays the main role in the ORR in alkaline solution.
This study reported the successful synthesis of N-doped graphene using a rapid, efficient microwave heating method under NH3 atmosphere. A N content of up to 5.47 wt% was obtained in just tens of seconds. As microwave heating time increased, the content of graphite N and EORR both increased. The doping of graphite N enhanced the activity of the catalysts in the ORR in alkaline solution.