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用于增强镉吸附及环境修复的硫官能化锯末生物炭:多学科方法及密度泛函理论见解

Sulfur-functionalized sawdust biochar for enhanced cadmium adsorption and environmental remediation: A multidisciplinary approach and density functional theory insights.

作者信息

Ahmed M M M, Liao Chih-Hao, Venkatesan S, Liu Yu-Ting, Tzou Yu-Min, Jien Shih-Hao, Lin Ming-Chang, Hsieh Yi-Cheng, Osman Ahmed I

机构信息

Department of Soil and Environmental Sciences, National Chung Hsing University, 145 Xingda Rd., Taichung, 40227, Taiwan; Innovation and Development Center of Sustainable Agriculture, National Chung Hsing University, 145 Xingda Rd., Taichung, 40227, Taiwan.

Department of Chemistry, School of Science and Humanities, Vignan's Foundation for Science, Technology and Research, Vadlamudi, Guntur, Andhra Pradesh, 522 213, India.

出版信息

J Environ Manage. 2025 Jan;373:123586. doi: 10.1016/j.jenvman.2024.123586. Epub 2024 Dec 12.

Abstract

Pristine biochar typically exhibits limited capacity for heavy metal adsorption due to its inadequate pore development and insufficient surface functionality. This study introduces an innovative chemical strategy to enhance the surface of sawdust biochar with sulfur-based functional groups (C=S, C-S, S-S, S, S-H, -SO, -SO) to significantly improve cadmium (Cd) adsorption. Sulfur-doping using HSO, NaS, and NaSO markedly increased the sulfur content from 0.11% (pristine) to 2.81% (HSO), 0.57% (NaS), and 13.27% (NaSO). Characterization techniques such as SEM-EDS, FTIR, and XPS confirmed the successful incorporation of sulfur moieties and additional oxygen-containing groups, improving surface functionality. The Cd adsorption capacity of S-modified biochar increased by 4.8-9.0 times compared to pristine biochar, with peak values of 39.38, 20.84, and 34.14 mg g for HSO, NaS, and NaSO-modified biochar, respectively. The equilibrium time was significantly reduced from 4 h (pristine) to 5-10 min (S-modified). The enhanced Cd adsorption was attributed to the synergistic interplay of electrostatic attraction, cadmium-π electron interactions, complexation, and ion exchange mechanisms, facilitated by the presence of oxygen and sulfur functional groups. Density Functional Theory (DFT) calculations showed that sulfur doping modulated the electronic properties of the biochar-Cd systems, narrowing the band gap and enhancing the Cd-O bonds, thereby improving the Cd adsorption performance. Additionally, the binding energies of the S-modified biochar-Cd complex were found to be more stable compared to those before Cd adsorption. This study demonstrates that both oxygen and sulfur-functionalized sawdust biochar is an effective and eco-friendly adsorbent for Cd removal, highlighting the significance of tailored surface modifications to augment biochar's reactivity and affinity towards specific contaminants. The developed material offers a sustainable and scalable solution for Cd removal from aqueous environments, contributing to advanced water treatment technologies and environmental remediation strategies.

摘要

原始生物炭由于其孔隙发育不足和表面官能团不足,通常表现出有限的重金属吸附能力。本研究引入了一种创新的化学策略,用硫基官能团(C=S、C-S、S-S、S、S-H、-SO、-SO)对锯末生物炭表面进行改性,以显著提高镉(Cd)的吸附量。使用HSO、NaS和NaSO进行硫掺杂,使硫含量从0.11%(原始生物炭)显著增加到2.81%(HSO)、0.57%(NaS)和13.27%(NaSO)。扫描电子显微镜-能谱仪(SEM-EDS)、傅里叶变换红外光谱仪(FTIR)和X射线光电子能谱仪(XPS)等表征技术证实了硫部分和额外含氧基团的成功引入,改善了表面官能团。与原始生物炭相比,硫改性生物炭的Cd吸附量增加了4.8-9.0倍,HSO、NaS和NaSO改性生物炭的峰值分别为39.38、20.84和34.14 mg g。平衡时间从4小时(原始生物炭)显著缩短至5-10分钟(硫改性生物炭)。Cd吸附增强归因于氧和硫官能团存在促进的静电吸引、镉-π电子相互作用、络合和离子交换机制的协同作用。密度泛函理论(DFT)计算表明,硫掺杂调节了生物炭-Cd体系的电子性质,缩小了带隙并增强了Cd-O键,从而提高了Cd吸附性能。此外,发现硫改性生物炭-Cd络合物的结合能比Cd吸附前更稳定。本研究表明,氧和硫官能化的锯末生物炭是一种有效且环保的Cd去除吸附剂,突出了定制表面改性对增强生物炭对特定污染物的反应性和亲和力的重要性。所开发的材料为从水环境中去除Cd提供了一种可持续且可扩展的解决方案,有助于先进的水处理技术和环境修复策略。

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