Rana Harshdeep, Sareen Dipti, Goswami Saswata
Chemical Engineering Division, Center of Innovative and Applied Bioprocessing, Mohali, Punjab 140306, India.
Department of Biochemistry, Panjab University, Hargobind Khorana Block, Sector-25, Chandigarh 160014, India.
ACS Omega. 2024 Feb 13;9(8):8904-8922. doi: 10.1021/acsomega.3c06924. eCollection 2024 Feb 27.
A nanocellulose (NC)-based cross-linked adsorbent has been employed herein for the removal of dye pollutants (e.g., methylene blue) from the textile industry. The synthesized hydrogel was optimized to achieve the best concentrations of the adsorbent constituents, i.e., 1.55% guar gum, 1.46% NC, and 0.84% borax for achieving the maximum swelling index (SI, 3741.42%) and higher adsorption capacity (, 24.05 mg g). 98.8% of dye was achieved at optimal conditions of pH 8 within 30 min at 30 °C. Adsorption isotherms and kinetics investigations showed good correlation with the Freundlich adsorption isotherm model ( > 0.9889; Δ° = -4.71; Δ° = -12.30; Δ° = -0.025) as well as the pseudo-second-order kinetics model, indicating multilayered and intricate adsorption mechanisms for dye removal. The study of thermodynamic parameters confirmed the exothermic nature of the adsorption process. The adsorption-desorption study of the resulting hydrogel exhibited 64.58% dye removal efficiency even after 4 consecutive cycles of reuse. Further, scanning electron microscopy, Fourier transform infrared spectroscopy, thermogravimetric analysis, and X-ray diffraction analysis revealed the surface morphology, functional moieties, thermal behavior, and crystallinity pattern of the hydrogel. Rheological analysis demonstrated pseudoplastic flow and improved mechanical behavior for the hydrogel. The current study found that the synthesized adsorbent with a higher SI and has a noticeable potential for the removal of dye pollutants from wastewater.
本文采用了一种基于纳米纤维素(NC)的交联吸附剂来去除纺织工业中的染料污染物(如亚甲基蓝)。对合成的水凝胶进行了优化,以实现吸附剂成分的最佳浓度,即1.55%瓜尔胶、1.46% NC和0.84%硼砂,从而获得最大溶胀指数(SI,3741.42%)和更高的吸附容量(24.05 mg/g)。在30℃、pH 8的最佳条件下,30分钟内染料去除率达到98.8%。吸附等温线和动力学研究表明,其与弗伦德里希吸附等温线模型(R²>0.9889;ΔG°=-4.71;ΔH°=-12.30;ΔS°=-0.025)以及准二级动力学模型具有良好的相关性,表明染料去除过程存在多层且复杂的吸附机制。热力学参数研究证实了吸附过程的放热性质。所得水凝胶的吸附-解吸研究表明,即使经过4次连续重复使用循环,染料去除效率仍为64.58%。此外,扫描电子显微镜、傅里叶变换红外光谱、热重分析和X射线衍射分析揭示了水凝胶的表面形态、功能基团、热行为和结晶模式。流变学分析表明水凝胶具有假塑性流动和改善的力学性能。当前研究发现,具有较高SI和吸附容量的合成吸附剂在去除废水中的染料污染物方面具有显著潜力。