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海藻酸功能化银纳米颗粒:一种用于检测关键技术元素碲的快速监测工具。

Alginic acid-functionalized silver nanoparticles: A rapid monitoring tool for detecting the technology-critical element tellurium.

作者信息

Kim Dae-Young, Yang Tianxi, Srivastava Priyanka, Nile Shivraj Hariram, Seth Chandra Shekhar, Jadhav Umesh, Syed Asad, Bahkali Ali H, Ghodake Gajanan Sampatrao

机构信息

Department of Biological and Environmental Science, Dongguk University-Seoul, 32 Dongguk-ro, Ilsandong-gu, Goyang-si 10326, Gyeonggi-do, Republic of Korea.

Food, Nutrition and Health, Faculty of Land and Food Systems, The University of British Columbia, Vancouver, BC V6T 1Z4 Canada.

出版信息

J Hazard Mater. 2024 Mar 5;465:133161. doi: 10.1016/j.jhazmat.2023.133161. Epub 2023 Dec 4.

DOI:10.1016/j.jhazmat.2023.133161
PMID:38103291
Abstract

The increasing global demand for tellurium, driven by its critical role in alloys, photovoltaic devices, and electronics, has raised concerns about its environmental pollution and neurotoxicity. In response, the potential of alginic acid (AA), a renewable, low-cost, and sustainable biopolymer, was explored for the biosynthesis of ultra-small silver nanoparticles (AgNPs) and their application in the detection of tellurium (Te(IV)). The effect of key synthesis parameters on desired physicochemical properties and yield of AgNPs was established to ensure high specificity and sensitivity towards Te(IV). The purified AgNPs with AA surface ligands were utilized to demonstrate a ratiometric absorbance sensor that exhibits excellent linearity and nanomolar-level affinity. This approach achieved a high correlation coefficient of ∼ 0.982, with a low detection limit of about 22 nM. Further investigations into the effect of pH, ionic strength, and organic molecules were conducted to elucidate detection performance and molecular understanding. The detection mechanism relies on the coordination between Te(IV) ions and the carboxylate groups of AA, which initiates aggregation-induced plasmon coupling in adjacent AgNPs. The capability of this analytical method to monitor Te(IV) in real-world water samples features its rapidity, user-friendliness, and suitability for point-of-care monitoring, making it a promising alternative to more complex techniques.

摘要

由于碲在合金、光伏器件和电子产品中起着关键作用,全球对碲的需求不断增加,这引发了人们对其环境污染和神经毒性的担忧。作为回应,人们探索了海藻酸(AA)这种可再生、低成本且可持续的生物聚合物在生物合成超小银纳米颗粒(AgNPs)及其在碲(Te(IV))检测中的应用潜力。确定了关键合成参数对AgNPs所需物理化学性质和产率的影响,以确保对Te(IV)具有高特异性和灵敏度。利用带有AA表面配体的纯化AgNPs展示了一种比率吸收传感器,该传感器具有出色的线性度和纳摩尔级亲和力。这种方法实现了约0.982的高相关系数,检测限低至约22 nM。进一步研究了pH、离子强度和有机分子的影响,以阐明检测性能和分子理解。检测机制依赖于Te(IV)离子与AA羧基之间的配位,这会引发相邻AgNPs中的聚集诱导等离子体耦合。这种分析方法在实际水样中监测Te(IV)的能力具有快速、用户友好以及适用于即时检测的特点,使其成为更复杂技术的有前景的替代方法。

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