Preparation and properties of polystyrene incorporated with gold and silver nanoparticles for optoelectronic applications
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Abstract
In this paper, methyl-orange-doped polystyrene (PS) microspheres covered with gold and silver nanoparticles (NPs) have been synthesized. The optical and structural properties of the porous polystyrene films before and after incorporation of Au and Ag nanoparticles were investigated using X-ray diffraction (XRD), scanning electron microscope (SEM), atomic force microscope (AFM), Fourier transformation infrared spectrophotometer (FT-IR), and UV–Vis spectrophotometer. The optical data showed that the optical energy gap of PS film was increased from 2 to 3.4 eV and to 3.5 eV after being filled with Ag and Au nanoparticles, respectively. The electrical and photoresponse properties of Ag–PS/p-Si and Au–PS/p-Si heterojunctions were studied. The rectification characteristics of the junction were improved after nanoparticle incorporation. The photoresponse results confirm the presence of two peaks of response located at 450 and 900 nm. The Au–PS/Si heterojunction gave the best photosensitivity.
Keywords
Polystyrene Incorporation Gold nanoparticles Silver nanoparticlesIntroduction
Organic polymer-based materials are very important in the field of optoelectronics due to their attractive properties (Hsu et al. 2016). These materials are rapidly replacing their inorganic counterparts due to their flexibility in manufacturing combined with the ease in fabrication and manufacturing. Polystyrene (PS) has draw attention due to its superior properties such as high transparency, electrical insulator, high refractive index and low water absorption (Shaffer and Koziol 2002; Walker and Asher 2005). PS being cost-effective commercial commodity plastic material has been utilized as one of the important polymeric materials for various NLO-active devices (Sureshkumar et al. 2008). It is reported that the optical properties, magnetic properties, and mechanical properties of PS were significantly improved after embedding metal or semiconductor nanoparticles into the polymer matrix (Nikkeshi et al. 1998; Zhu and Schmauder 2003; Ahmad and Mamat 2011; Aly et al. 2012; Sangawar and Golchha 2013). It is reported that addition of metal nanoparticles can enhance the thermal conductivity and heat transfer of fluid (Sheikholeslami 2017a, b; Sheikholeslami et al. 2017; Sheikholeslami and Vajravelu 2017). Incorporation of noble metals in polystyrene for the synthesis of composite has potential advantages in optoelectronic, catalyst, and chemical sensors applications (Alekseeva et al. 2013; Zhu et al. 2013; Khokhar et al. 2011; Higuchi et al. 2016). Xia et al. (2014) increased the power conversion efficiency of organic/Si hybrid solar cells by incorporating of gold into poly (3,4-ethylenedioxythiophene)/polystyrenesulfonate due to light trapping.
Here, we report the first study on preparation and characterization of PS:MO/Si heterojunction photo detectors based on incorporating the polystyrene with gold and silver nanoparticles prepared by laser ablation in liquid.
Experimental
Photographs of polystyrene solution before and after doping with MO
Photograph of fresh colloidal Ag NPs and Au NPs prepared by laser ablation in ethanol
Architecture of PS/Si heterojunction
The spectral responsivity in the range of (400–1000) nm of the heterojunctions before and after incorporation of nanoparticles was investigated using calibrated monochromator (Jobin-Yvon). All the above measurements were conducted at room temperature.
Results and discussion
XRD patterns of PS films before and after addition of Au and Ag nanoparticles
SEM images of a PS matrix, b Au-incorporated PS matrix, c Ag-incorporated PS matrix. Inset the magnified SEM image of microsphere PS
TEM images of Au NPs (a) and Ag NPs (b)
3-D AFM images of PS (a), Au–PS composite (b) and Ag–PS composite (c)
The PS matrix film has pores and the grains agglomerated and aggregated on the walls of the pores. It is clear that the morphology of PS showed microspheres of PS with existence of pores (Fig. 7a). The morphology was significantly changed after adding the nanoparticles; the added particles completely filled the PS-interconnected pores and some of them are agglomerated. The AFM images of Au–PS and Ag–PS composites (Fig. 7b, c) confirmed that the Au and Ag particles were uniformly distributed over the entire PS matrix, vertically aligned and well attached to the PS microspheres.
Variation of (αhν)2 versus photo energy of PS, Au–PS and Ag–PS composites
This result can be ascribed to (I) appearance of loose defect charges located at interface and to (II) the conducting process is dominated by the percolating paths, in parallel with other non-percolating paths (Tchoul et al. 2008; Shockley and Read 1952).
Dark I–V characteristics of PS/Si heterojunctions before and after inclusion of Au NPs and Ag NPs
Illuminated I–V characteristics of PS/Si (a) Au–PS/Si (b) and Ag–PS/Si heterojunctions (c)
Effect of inclusion of Au NPs and Ag NPs into PS matrix on spectral responsivity of heterojunctions
Conclusion
We have successfully demonstrated a simple and novel technique to synthesis Ag-decorated and Au-decorated PS microspheres. The optical properties data show that the optical energy gap of PS decrease after incorporating with Au NPs and Ag NPs. XRD data confirm the amorphous nature of PS and PS composite layers. The electrical and photoresponse of PS/Si enhanced significantly after adding Ag NPs and Au NPs. Two peaks of response were noticed for PS composite/Si heterojunction. Based on the results obtained, this technique can be used to fabricate high photosensitivity and cost-effective PS/Si heterojunction photodetectors.
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