Hengwei Qiua,
Zhen Lia,
Saisai Gaoa,
Peixi Chena,
Chao Zhanga,
Shouzhen Jiang*a,
Shicai Xub,
Cheng Yanga and
Hongsheng Lic
aSchool of Physics and Electronics, Shandong Normal University, Jinan 250014, People's Republic of China. E-mail: jiang_sz@126.com
bCollege of Physics and Electronic Information, Shandong Provincial Key Laboratory of Functional Macromolecular Biophysics, Institute of Biophysics, Dezhou University, Dezhou 253023, People's Republic of China
cDepartment of Radiation Oncology, Key Laboratory of Radiation Oncology of Shandong Province, Shandong Cancer Hospital and Institute, Jinan 250117, People's Republic of China
First published on 29th September 2015
In our work, we directly synthesized few layer MoS2 on a pyramid-Si substrate to fabricate a surface-enhanced Raman scattering (SERS) substrate via thermally decomposing the precursor of ammonium thiomolybdate ((NH4)2MoS4). Scanning electron microscopy (SEM), atomic force microscopy (AFM), X-ray diffraction (XRD) and Raman spectra are employed to characterize the as-grown MoS2 layers. Adenosine and cytidine were selected as the probe molecules to investigate the SERS ability of the MoS2-pyramid-Si substrate, and have shown that the MoS2-pyramid-Si substrate can prominently suppress photobleaching and fluorescence of the probe molecule. Compared with the MoS2-flat-Si substrate (MoS2 layers synthesized on flat-Si substrate), the MoS2-pyramid-Si substrate has more significant SERS ability. The minimum detected concentration of both adenosine and cytidine on the MoS2-pyramid-Si substrate can reach 10−6 M. Importantly, the linear relationship between the Raman intensity and the concentration of adenosine or cytidine can apply to the bimolecular detection. This work may provide a new opportunity for the study of the chemistry mechanism (CM) and novel SERS substrate fabrication.
MoS2, which is a ultrathin 2D layered material analogous to graphene, has created great interest due to its great potential in the fields of catalysis, microelectronics, lithium batteries, hydrogen storage, dry lubricant, medical and optoelectronics.7–13 In form, the layered MoS2, where the Mo layer is sandwiched between two sulfur layers by covalent forces.14 Compare with graphene, easier bio-modification of MoS2 can be more widely used in biosensor. Recent research indicated that MoS2 films have Raman enhancement effect, which may cause by charge transfer and dipole–dipole coupling.15 Nowadays, the SERS substrates based on graphene or graphene–metal nanostructure have been already matured,16–19 but the SERS substrate fabrication based on MoS2 is still at primary stage. Importantly, MoS2 with the high light transmission, chemical stability, biomolecular affinity and low-temperature synthesis, undoubtedly can be an ideal platform to support SERS active. Porous Si possesses large specific area and governable nanoporous structure, which can increase the amount of the effective hot spots and further enhance the sensitivity of the SERS signals.20–22 Recently, some groups have reported different SERS substrates based the porous Si, such as porous Si decorated with Au nanoparticles23,24 and Ag-coated Si nanoporous.25,26
Here, we present a MoS2-pyramid-Si SERS substrate with demonstrated low concentration sensitivity. Compare with graphene, large-size MoS2 layers can be synthesized in a relatively lower temperature with relatively simple process by using thermally decomposing the precursor of (NH4)2MoS4. Two kinds of nucleoside molecules (adenosine and cytidine) were selected to explore the SERS ability of the MoS2-pyramid-Si substrate. The minimum detected concentration of both adenosine and cytidine can be 10−6 M, this undoubtedly shows the excellent Raman enhancement effect of the MoS2-pyramids-Si substrate.
In order to further investigate the characteristics of the as-grown MoS2 layers, Raman spectra were obtained from the randomly selected five points on the MoS2-pyramid-Si (600 °C) substrate, six points on the MoS2-flat-Si substrate, and eight points on the MoS2-pyramid-Si substrate, as shown in Fig. 3(a). For all the Raman spectra obtained from three kinds of substrates, two Raman characteristic peaks of the in-plane E12g and the out-of-plane A1g (at 360–420 cm−1) vibration are all clearly seen.28 It has been reported that the MoS2 structure formed at the thermolysis temperature higher than 300 °C. However, for the MoS2-pyramid-Si (600 °C) substrate, the relatively larger width (∼10 cm−1) of E12g band and weaker intensity (relative to the substrate Si peak at 520 cm−1) indicate that the crystal structure of MoS2 is still not perfect. Note that the second annealing can effectively promote MoS2 formation and sulfur source can effectively supply the sulfur vacancy. For MoS2-flat-Si substrate and MoS2-pyramid-Si substrate, the full-width-half-maximum (FWHM) values of E12g and A1g band respectively are 6–7 and 3–4 cm−1, and the stable Raman characteristic peaks indicate that the uniform MoS2 layers have successfully synthesized. The relatively narrow and strong of E12g mode, which suggest the high quality of MoS2 crystal structure. The peak frequency difference (Δ) between E12g and A1g bands can be used to identify the layer number of MoS2.28 The value of Δ between E12g and A1g bands obtained from the randomly selected eight points on the MoS2-pyramid-Si substrate and six points on the MoS2-flat-Si substrate are shown in Fig. 3(b). The eight points on the MoS2-pyramid-Si substrate are marked with black color and the values of Δ are all in a range of 23–25 cm−1, which indicate that the as-grown MoS2 are 3–5 layers. The MoS2-flat-Si substrate are similar to the MoS2-pyramid-Si substrate with 3–6 layers. In order to further certify the coverage rate of MoS2 layers, Raman mapping of E12g band was obtained from the MoS2-pyramid-Si substrate in an area of 10 × 10 μm2. The blue point in Fig. 3(c) corresponds to the Raman spectra marked with blue curve in Fig. 3(a). The Raman intensity of E12g band is in a range of 480–530 (the baseline is ∼350), which indicate that the pyramid-Si substrate is almost covered with MoS2 layers. Fig. 3(d) and (e) show EDS spectra from the MoS2-pyramid-Si substrate and MoS2-flat-Si substrate, respectively. The peaks associated to silicon element are clearly observed. The molybdenum and sulfur related peaks are very weak, possible due to the ultrathin structure of MoS2 layers. The AFM images of the MoS2-pyramid-Si substrate was also performed, as shown in Fig. 4(a). From the AFM image in a large-scale, one can see that the surface of the pyramid-Si array is smooth. In order to observe more clearly, a magnified AFM image was obtained, as shown in top right corner inset in Fig. 4(a). The holes marked with blue circles are correspond to the micropores in SEM images and the depth is ∼3 nm (the thickness of the monolayer MoS2 is ∼0.7 nm). Fig. 4(d) shows the X-ray diffraction (XRD) pattern of the MoS2-pyramid-Si substrate, there are three pronounced peaks at 2θ = 31.910°, 69.016° and 69.158° assigned as the (100), (200) and (108) reflections, respectively [powder diffraction file (PDF) no. 751539]. The (002) peak can hardly be detected, which indicate that the as-grown MoS2 is in a structure of monolayer or few layers.29,30
Fig. 4 (a) AFM image of the MoS2-pyramid-Si substrate. (b) XRD pattern of the MoS2-pyramid-Si substrate. |
Adenosine was selected as the probe molecule to demonstrate the SERS effect of the three kinds of substrate. The characteristic Raman peaks of adenosine have confirmed according to the previous works.31,32 The peaks at 725 and 1576 cm−1 assigned to the ring breathing modes of the whole molecule. The peak at 841 cm−1 assigned to skeletal mode of C–O–C. The peak at 1301 cm−1 assigned to the stretching vibration of N–C–N and C–C–N. The peak at 1330 cm−1 assigned to the stretching vibration of C–N and the bending vibration of C–H. The peak at 1370 cm−1 assigned to the bending vibration of N–H and C–H. For all the SERS substrates, the measured Raman intensity decay with the decrease of the adenosine concentration. As shown in Fig. 5(a) and (b), the minimum detected concentration of adenosine from MoS2-pyramid-Si substrate is one order of magnitude lower than that from MoS2-flat-Si substrate, which can be as low as 10−6 M. This enhancement effect is almost reached the detection limit of Ag–Si pillar array (adenine of 10−6 M) and Ag–Si pyramid (adenosine of 10−7 M).25,27 The Raman intensity from MoS2-pyramid-Si substrate is 3–5 times stronger than that from MoS2-flat-Si substrate, which can attributed to the well-separated pyramid arrays.33 The pyramid-Si arrays can effectively make the incident laser oscillate between the pyramidal valleys, which will further lead to local enhancement of the incident laser. The scattering area of MoS2-pyramid-Si substrate is relatively larger than MoS2-flat-Si substrate, which can further enhance the scattering cross-section. Fig. 5(c) shows the Raman spectra of adenosine obtained from pyramid-Si substrate and the minimum detected concentration only reached 10−4 M. This phenomenon can be due to the lack of surface plasmons and only this local enhancement of the incident laser can't support the SERS active. Compare the Raman spectra from MoS2-pyramid-Si substrate with that from pyramid-Si substrate, more effective enhancement effect is obvious. The peaks at 718 (725) cm−1 from MoS2-pyramid-Si substrate is ∼13.2 times stronger than that from pyramid-Si substrate. The peaks at 1301 (1297) cm−1 from MoS2-pyramid-Si substrate is ∼15.6 times stronger than that from pyramid-Si substrate. The peaks at 1330 (1339) cm−1 from MoS2-pyramid-Si substrate is ∼13.5 times stronger than that from pyramid-Si substrate. The enhancement factors for other peaks are relatively weaker than the peaks above mentioned. From the comparison, the enhancement factors for different peaks are about in a range of 2–15. It should be noted that the multiple of the enhancement, 2–15 times and the vibration dependence of the enhancement factors are both consistent with the chemical enhancement mechanism. Moreover, for pyramid-Si substrate with the concentration of 10−4 M, some Raman peaks can't be distinguished because of the merger phenomena, such as the peaks at 725 and 755 cm−1, which indicates that MoS2 layers can contribute to the peak identification. The Raman peaks from MoS2-pyramid-Si substrate appear little red shift or blue shift compare with that from pyramid-Si substrate, which is because the chemical interaction of charge transfer and dipole–dipole coupling. The peaks at 718 and 1330 cm−1 were selected to investigate the relationship between the Raman intensity and the concentrations. Fig. 5(d) shows the Raman intensity as a function of the adenosine concentrations. To represent the capability of the quantitative detection of adenosine, the linear fit calibration curve (R2) with error bars is presented and the value of R2 of 718 and 1330 cm−1 can reach 0.941 and 0.988, respectively. The excellent linear response between the Raman intensity and adenosine concentrations prove that the prepared MoS2-pyramid-Si substrate can serve as good SERS substrate for nucleoside detection.
In order to further demonstrate the feasibility of the prepared SERS substrate for nucleoside detection, another nucleoside molecule was selected in experiment, which is cytidine. As shown in Fig. 6(a), all the Raman peaks are inosculate with the reported work.34,35 The peak at 599 cm−1 assigned to the deformation ring. The peak at 790 cm−1 assigned to the ring breathing. The peaks at 1247 and 1290 cm−1 assigned to stretching vibration of C–N and bending vibration of N–H and C–H. There are different enhancement effect of each Raman peak due to the different adsorption states, such as the peak at 599 cm−1 is noticeable for concentration of 10−3 M and negligible for concentration of 10−4–10−6 M. The peak at 1270 cm−1 is just opposite with the peak at 599 cm−1. The Raman intensity of the peaks at 790 cm−1 shows the close relationship with the concentrations of cytidine, which was selected to further study the enhancement effect. Fig. 6(b) shows the reasonable linear response between the Raman intensity and the concentration of cytidine, the value of R2 is reached 0.968, which indicates the as-grown MoS2-pyramid-Si substrate is an effective platform for the SERS molecular detection. The MoS2 layers cover metal nanoparticles may have better Raman enhancement effect, further studies are now in progress in our group.
Fig. 6 (a) The Raman spectra of cytidine on the pyramid-Si substrate from 10−3 to 10−6 M. (b) Raman intensity of cytidine on the MoS2-pyramid-Si substrate at 790 cm−1 as a function of concentration. |
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