利用苋菜提取物绿色合成的 rGO 的微观结构和光学特性

Z. Zurnansyah, Putri Dwi Jayanti, Larrisa Jestha Mahardhika, Hafil Perdana Kusumah, N. Istiqomah, E. Suharyadi
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引用次数: 0

摘要

利用马齿苋(AV)提取物成功进行了还原型氧化石墨烯(rGO)的绿色合成研究。该研究采用改良的 Hummers 法合成氧化石墨烯(GO),然后用水合肼和 AV 提取物还原得到 rGO。X 射线衍射结果表明了从石墨到 rGO 晶体结构的变化。2θ 角分别为 26.5°、9.1° 和 24.1°的峰值显示了石墨、GO 和 rGO 的特征。透射电子显微镜图像显示形成了带有轻微皱褶的二维纳米片形态。傅立叶变换红外光谱显示了石墨烯基纳米材料中六个相同官能团的峰值。同时,GO 还具有两个额外的氧基团(羧基和羟基),波长分别为 1720 cm-1 和 1217 cm-1。此外,紫外-可见光分析数据显示,GO 在 232 纳米和 301 纳米处有典型的吸收,而在 266 纳米和 278 纳米处则属于石墨和 rGO。纳米材料的带隙能为 0-3.58 eV,这说明了它们在光学性质上的差异。这些令人鼓舞的结果揭示了 AV 作为一种绿色还原剂的潜力,可以在合成 rGO 的过程中最大限度地减少化学品的使用,从而将其应用于各种领域。
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Microstructural and Optical Properties of Green-Synthesized rGO Utilizing Amaranthus viridis Extract
Research of green-synthesized reduced graphene oxide (rGO) using Amaranthus viridis (AV) extract has been successfully conducted. The modified Hummers method was used to synthesize graphene oxide (GO), then reduced using hydrazine hydrate and AV extract to obtain rGO. The X-ray diffraction results illustrate the change in crystalline structure from graphite to rGO. Peaks at 2θ angles of 26.5°, 9.1°, and 24.1° indicate the characteristics of graphite, GO, and rGO, respectively. The transmission electron microscopy image shows the formation of 2D nanosheet morphology with slight wrinkles. The fourier transform infrared spectrum represents six peaks of identical functional groups in the graphene-based nanomaterials. Meanwhile, GO has two additional oxygen groups (carboxyl and hydroxyl) at wavenumbers of 1720 cm-1 and 1217 cm-1, respectively. Furthermore, the UV-Vis analysis data shows the typical absorption of GO at 232 nm and 301 nm, while at 266 nm and 278 nm, it belongs to graphite and rGO. The bandgap energy of nanomaterials is 0–3.58 eV, which describes the difference in their optical properties. These promising results reveal the potential of AV as a green-reducing agent to minimize the use of chemicals in the synthesis of rGO for various applications.
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