绿色纳米技术对抗有毒镉:机制、进展和未来解决方案之路

Sangeeta Patil , Dinesh Kumar Chelike
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引用次数: 0

摘要

镉(Cd 2 +)污染仍然是一个关键的环境和公共卫生挑战,因为它具有高流动性、持久性和严重的毒理学效应,包括氧化应激、酶抑制和器官生物蓄积。从可持续资源中提取的纳米吸附剂具有高效、可调的表面化学性质和环境相容性,是水修复的有希望的候选材料。尽管取得了重大进展,但仍存在重大差距。特别是,控制绿色纳米吸附剂再生稳定性的机制仍然知之甚少,这限制了它们的大规模应用。此外,对不同材料类别的吸附能力、选择性和稳定性的系统交叉比较是有限的,现有的综述很少在镉的分子毒性机制和吸附剂设计策略之间建立直接联系。为了解决这些空白,本文综述了无机纳米吸附剂的机理合成进展,包括粘土矿物、生物质衍生的碳、壳聚糖、农业废弃物基纳米材料和绿色合成的金属氧化物复合材料,并评估了表面积、孔隙度、官能团密度、吸附动力学和热力学等物理化学因素如何影响Cd 2 +的结合。这项工作的一个独特贡献是将镉的毒性途径与吸附剂的合理设计相结合,同时也强调了诸如可生物降解纳米材料和人工智能辅助材料筛选等新兴领域。通过确定可扩展性、再生和长期稳定性方面尚未解决的挑战,本综述不仅加深了对机制的理解,而且概述了开发下一代、可持续和环境安全的镉修复技术的实用技术途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Green nanotechnology against toxic cadmium: Mechanisms, progress, and the path to future solutions
Cadmium (Cd²⁺) contamination remains a critical environmental and public health challenge due to its high mobility, persistence, and severe toxicological effects, including oxidative stress, enzymatic inhibition, and organ bioaccumulation. Nanoadsorbents derived from sustainable resources have emerged as promising candidates for water remediation, offering high efficiency, tunable surface chemistry, and environmental compatibility. Despite significant progress, critical gaps remain unaddressed. In particular, the mechanisms governing regeneration stability of green nano-adsorbents are still poorly understood, which restricts their translation to large-scale applications. Moreover, systematic cross-comparisons of adsorption capacity, selectivity, and stability across material classes are limited, and existing reviews rarely establish a direct link between cadmium’s molecular toxicity mechanisms and adsorbent design strategies. To address these gaps, this review provides a mechanistic synthesis of advances in inorganic-nanoadsorbents including clay minerals, biomass-derived carbons, chitosan, agricultural waste-based nanomaterials, and green-synthesised metal oxide composites and evaluates how physicochemical factors such as surface area, porosity, functional group density, adsorption kinetics, and thermodynamics govern Cd²⁺ binding. A distinctive contribution of this work is the integration of cadmium’s toxicity pathways with the rational design of adsorbents, while also highlighting emerging domains such as biodegradable nanomaterials and AI-assisted material screening. By identifying unresolved challenges in scalability, regeneration, and long-term stability, this review not only deepens mechanistic understanding but also outlines practical technical pathways for developing next-generation, sustainable, and environmentally safe technologies for cadmium remediation.
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