首页> 外文期刊>Microchemical Journal: Devoted to the Application of Microtechniques in all Branches of Science >Superparamagnetic enzyme-graphene oxide magnetic nanocomposite as an environmentally friendly biocatalyst: Synthesis and biodegradation of dye using response surface methodology
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Superparamagnetic enzyme-graphene oxide magnetic nanocomposite as an environmentally friendly biocatalyst: Synthesis and biodegradation of dye using response surface methodology

机译:超顺磁性酶 - 石墨烯氧化物磁性纳米复合物作为环保型生物催化剂:使用响应面法使用染料的合成和生物降解

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The unique properties of graphene oxide (GO) nanosheets were integrated with the superparamagnetic characteristics of the CuFe2O4 nanoparticles to synthesize the magnetic graphene oxide (MGO), which was chemically modified with 3-amino propyl trimethoxy silane (APTMS) to functionalize the amine group on MGO (MGO-NH2). Afterward, MGO-NH2 was activated with glutaraldehyde (GLU) as a crosslinking agent to synthesize the functionalized MGO (fMGO) and its capability toward covalent Laccase immobilization was investigated. The comprehensive structural analysis using various characterization techniques, including Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), vibrating sample magnetometer (VSM), transmission electron microscopy (TEM), and scanning electron microscopy (SEM) clearly confirmed the covalent attachment of laccase onto MGO. The response surface methodology (RSM), based on Central Composite Design (CCD), was applied to optimize the immobilized Laccase (nanobiocatalyst)-mediated biodegradation of Direct Red 23 (DR23), as an azo dye, by considering independent variables such as nanobiocatalyst dosage, dye concentration, and pH. The optimal conditions to obtain the maximum decolorization yield (95.33%) were nanobiocatalyst dosage = 290.23 mg/L, dye concentration = 19.60 mg/L, and pH = 4.23. The obtained correlation coefficient and the adjusted one of 0.9651 and 0.9336, respectively, imply the nice model fitness. Therefore, structural characterization along with the experimental decolorization results introduced the synthesized super paramagnetic GO as an environmentally friendly nanobiocatalyst for effective decolorization purposes.
机译:将石墨烯(GO)纳米片的独特性能与CuFe2O4纳米颗粒的超顺磁性集成,以合成磁性石墨烯氧化物(MgO),其用3-氨基丙基三甲氧基硅烷(APTMS)化学改性,以使胺基团体官能化MgO(MgO-NH2)。之后,用戊二醛(Glu)活化MgO-NH2作为交联剂,以合成官能化MgO(FMGO),并研究了其对共价漆酶固定的能力。使用各种表征技术的综合结构分析,包括傅里叶变换红外光谱(FTIR),X射线衍射(XRD),振动样品磁力计(VSM),透射电子显微镜(TEM)和扫描电子显微镜(SEM)清楚地证实了将漆酶与MgO的共价附着。基于中央复合设计(CCD)的响应面方法(RSM)应用于优化直接红色23(DR23)的固定漆(纳米催化剂)介导的直接红色23(DR23)的生物降解,通过考虑纳米双催化剂等独立变量,如偶氮染料剂量,染料浓度和pH值。获得最大脱色产率(95.33%)的最佳条件是纳米双催化剂剂量= 290.23mg / L,染料浓度= 19.60mg / L,pH = 4.23。所获得的相关系数和0.9651和0.9336中的调整后的一个暗示良好的模型健身。因此,结构表征以及实验脱色结果引入了合成的超顺磁性作为一种环保的纳米双催化剂,用于有效的脱色目的。

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