Biosynthesis of Zinc Oxide Powder Using Sandoricum koetjape Peel Extract at Various Annealing Temperature

A. S. Rini, Nurul Hidayanti, Y. Rati
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引用次数: 1

Abstract

Zinc oxide (ZnO) synthesized with natural reductants has attracted the attention of researchers because it is environmentally friendly and non-toxic. In this study, ZnO was prepared using Sandoricum koetjape (S. koetjape) peel extract. An aqueous extract of S. koetjape peel was used as biological reduction agent for the synthesis of ZnO from zinc nitrate hexahydrate. The ZnO powder obtained was annealed at different temperatures i.e, 300°C, 400°C, and 500°C for 1 hour. Structural, morphological, optical properties, and functional groups of samples were analyzed using X-Ray Diffraction, Scanning Electron Microscopy, UV-Vis Spectroscopy, and Fourier Transform Infrared Spectroscopy, respectively. The X-ray diffraction pattern shows that pure hexagonal wurtzite structure of ZnO particles can be achieved after annealing. The crystal size has also increased with increasing annealing temperature. SEM photo demonstrates the transformation of ZnO particle from spherical to microflower due to annealing. The widest absorption peaks in the UV-Vis spectrum was occurred after annealing at 500°C. The bandgap energy of ZnO increases after annealing from 3.08 eV to 3.20 eV. The FT-IR analysis confirms O-H functional group from extract has been decomposed due to the annealing process. Based on this study, biosynthesized ZnO using Sandoricum koetjape peel extract requires annealing process to improve the purity, enhance the light absorbance and change the microstructure of ZnO.
不同退火温度下山柰提取物生物合成氧化锌粉体的研究
用天然还原剂合成的氧化锌(ZnO)因其环保无毒而受到研究人员的关注。在本研究中,使用沙冬青皮提取物制备了ZnO。以六水硝酸锌为原料,采用山核桃皮水提取物作为生物还原剂合成氧化锌。将获得的ZnO粉末在不同温度(即300°C、400°C和500°C)下退火1小时。分别使用X射线衍射、扫描电子显微镜、UV-Vis光谱和傅里叶变换红外光谱分析样品的结构、形态、光学性质和官能团。X射线衍射图表明,退火后可以获得ZnO颗粒的纯六方纤锌矿结构。晶体尺寸也随着退火温度的升高而增加。SEM照片表明,退火后ZnO颗粒从球形转变为微球形。UV-Vis光谱中最宽的吸收峰发生在500°C退火后。退火后ZnO的带隙能量从3.08eV增加到3.20eV。FT-IR分析证实,提取液中的O-H官能团已因退火过程而分解。基于这项研究,利用山茱萸皮提取物生物合成ZnO需要退火工艺来提高纯度、提高光吸收率并改变ZnO的微观结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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