Synergistic adsorption of methylene blue from aqueous medium using MgO-Y2O3@gC3N4 (MYCN) nanocomposite: Performance evaluation and kinetic study

IF 5.45 Q1 Physics and Astronomy Nano-Structures & Nano-Objects Pub Date : 2024-07-24 DOI:10.1016/j.nanoso.2024.101267
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Abstract

Synthetic dyes pose a formidable challenge in wastewater treatment, resisting conventional oxidation and reduction reactions and posing risks to human health and the environment. This study introduces the innovative nanocomposite MgO-Y2O3@gC3N4 (MYCN) as a highly effective adsorbent for eliminating methylene blue (MB) dye. The MYCN nanocomposite was synthesized by dispersing Magnesium oxide and Y2O3 nanoparticles in isopropanol using an ultrasonic bath for 0.40 hours at 500 rpm, followed by the addition of g-C3N4 nanosheets. The resulting mixture underwent heating, grinding, and annealing processes for 1.5 hours at 145 °C. Through structural analysis using XRD, characteristic peaks corresponding to individual components were confirmed, while TEM, EDX, and BET techniques revealed the successful integration of MgO and Y2O3 with g-C3N4 nanosheets. The adsorption efficiency of the MYCN nanocomposite was extensively evaluated under varying experimental conditions, including contact time, initial MB concentration, and solution pH. With its impressive surface area of 90.2 m2.g−1, the nanocomposite exhibited remarkable adsorption capacity, leading to significant removal of MB dye from aqueous solutions. Although pH had a minimal influence on dye removal, the highest adsorption rate (94.34 %) was achieved at pH 7. Optimal adsorption conditions were determined as a contact time of 120 minutes, an initial MB concentration of 5 mg/L, and a pH of 7. To characterize the adsorption behavior and determine equilibrium concentrations, Freundlich and Langmuir's isotherm models were employed. The Langmuir model displayed an excellent fit to the experimental data, supported by a high regression coefficient (R2 > 0.95), indicating a monolayer adsorption process.

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使用 MgO-Y2O3@gC3N4 (MYCN) 纳米复合材料协同吸附水介质中的亚甲基蓝:性能评估和动力学研究
合成染料是废水处理中的一项艰巨挑战,它能抵御传统的氧化和还原反应,对人类健康和环境造成危害。本研究介绍了创新型纳米复合材料 MgO-YO@gCN(MYCN),作为消除亚甲基蓝(MB)染料的高效吸附剂。MYCN 纳米复合材料的合成过程是:使用超声波浴将氧化镁和 YO 纳米颗粒在异丙醇中分散 0.40 小时,转速为 500 rpm,然后加入 g-CN 纳米片。得到的混合物在 145 °C 下经过 1.5 小时的加热、研磨和退火过程。通过使用 XRD 进行结构分析,确认了单个成分对应的特征峰,而 TEM、EDX 和 BET 技术则揭示了氧化镁和氧化亚铜与 g-CN 纳米片的成功结合。在不同的实验条件(包括接触时间、甲基溴初始浓度和溶液 pH 值)下,对 MYCN 纳米复合材料的吸附效率进行了广泛评估。该纳米复合材料的表面积高达 90.2 m.g,表现出卓越的吸附能力,可显著去除水溶液中的甲基溴染料。虽然 pH 值对染料去除的影响很小,但在 pH 值为 7 时吸附率最高(94.34%)。 最佳吸附条件被确定为接触时间 120 分钟,初始甲基溴浓度为 5 毫克/升,pH 值为 7。为了描述吸附行为并确定平衡浓度,采用了 Freundlich 和 Langmuir 等温线模型。Langmuir 模型与实验数据非常吻合,回归系数很高(R > 0.95),表明这是一个单层吸附过程。
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来源期刊
Nano-Structures & Nano-Objects
Nano-Structures & Nano-Objects Physics and Astronomy-Condensed Matter Physics
CiteScore
9.20
自引率
0.00%
发文量
60
审稿时长
22 days
期刊介绍: Nano-Structures & Nano-Objects is a new journal devoted to all aspects of the synthesis and the properties of this new flourishing domain. The journal is devoted to novel architectures at the nano-level with an emphasis on new synthesis and characterization methods. The journal is focused on the objects rather than on their applications. However, the research for new applications of original nano-structures & nano-objects in various fields such as nano-electronics, energy conversion, catalysis, drug delivery and nano-medicine is also welcome. The scope of Nano-Structures & Nano-Objects involves: -Metal and alloy nanoparticles with complex nanostructures such as shape control, core-shell and dumbells -Oxide nanoparticles and nanostructures, with complex oxide/metal, oxide/surface and oxide /organic interfaces -Inorganic semi-conducting nanoparticles (quantum dots) with an emphasis on new phases, structures, shapes and complexity -Nanostructures involving molecular inorganic species such as nanoparticles of coordination compounds, molecular magnets, spin transition nanoparticles etc. or organic nano-objects, in particular for molecular electronics -Nanostructured materials such as nano-MOFs and nano-zeolites -Hetero-junctions between molecules and nano-objects, between different nano-objects & nanostructures or between nano-objects & nanostructures and surfaces -Methods of characterization specific of the nano size or adapted for the nano size such as X-ray and neutron scattering, light scattering, NMR, Raman, Plasmonics, near field microscopies, various TEM and SEM techniques, magnetic studies, etc .
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