Synergistic Optical and Electrical Modulation in PVP@rGO Nanocomposites for Advanced Photodetector Applications

材料科学 石墨烯 纳米复合材料 光电流 光电探测器 光电子学 光电导性 光探测 微晶 氧化物 带隙 傅里叶变换红外光谱 聚乙烯吡咯烷酮 比探测率 扫描电子显微镜 光敏性 红外线的 色散(光学) 纳米技术 光学
作者
Ammara Afzal,Muhammad Sulaman,Ali Imran,Muhammad Qasim,Wajid Hussain,Shareen Shafique,Navid Hussain Shah,Sameerah I. Al‐Saeedi,Muhammad Asim Khan,Muhammad Yousaf
出处
期刊:Energy technology [Wiley]
卷期号:14 (1) 被引量:6
标识
DOI:10.1002/ente.202501586
摘要

Reduced graphene oxide (rGO) and polyvinylpyrrolidone (PVP) are promising materials for the development of advanced nanocomposites due to the excellent electrical conductivity of rGO and the ability of PVP to stabilize dispersions of nanomaterials. In this study, we present the synthesis, characterization, and optoelectronic performance of PVP@rGO nanocomposites. Graphene oxide (GO) was synthesized via a modified Hummers’ method and reduced to rGO, which was then incorporated into PVP to form stable composites. The PVP@rGO composites were characterized using X‐ray diffraction (XRD), Fourier transform infrared (FTIR) spectroscopy, scanning electron microscopy (SEM), and UV–visible spectroscopy. The XRD pattern shows a broad (002) reflection of rGO near 25°, indicative of turbostratic graphitic ordering. The calculated average crystallite size, using the Debye–Scherrer equation, is approximately 4.5 nm, suggesting partially restacked nanosheets within the composite matrix. FTIR spectra indicated the reduction of GO to rGO, with the disappearance of oxygen‐containing groups and the appearance of characteristic CC bonds. SEM imaging revealed uniform dispersion of rGO within the PVP matrix, and UV–visible analysis showed a shift in the optical bandgap with increasing rGO content. The fabricated lateral‐type photodetector exhibited a strong and stable photocurrent response under 375 nm laser illumination, achieving a photoresponsivity of 98.39 A W −1 , a specific detectivity of 1.12 × 10 12 Jones, and a photosensitivity of 1.37 × 10 3 . These results demonstrate the excellent light‐to‐current conversion efficiency and highlight the promise of PVP@rGO nanocomposites for next‐generation optoelectronic and photodetection applications.
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