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Observed equilibrium partition and second-order kinetic interaction of quantum dot nanoparticles in saturated porous media

机译:观察到饱和多孔介质中量子点纳米粒子的平衡分区和二阶动力学相互作用

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摘要

This study integrated batch experiments and theoretical calculations to understand the equilibrium adsorption and kinetic interaction of CdSeS/ZnS alloyed quantum dots nanoparticles (QDNPs) in sand porous media under different ionic strengths (ISs; 0.001-0.2 M NaCl). Our experimental results showed that equilibrium was reached for QDNP concentration between solid phase and bulk solution due to reversible adsorption of the QDNPs on sand surfaces. Derjaguin-Landau-Verwey-Overbeek (DLVO) interaction energy calculations showed that the repulsive energy barriers were low and primary energy wells were shallow (i.e., comparable to the average kinetic energy of a colloid) at all tested solution ISs. Hence, the QDNPs could mobilize into and simultaneously escape from the primary wells by Brownian diffusion, resulting in the reversible adsorption. Additional batch experiments confirmed that a fraction of adsorbed QDNPs was released even without any perturbation of system conditions. The release was more evident at a lower IS because the primary energy wells spanned more narrowly at low ISs and thus the nanoparticles have a higher possibility to escape out. The batch kinetic experiments showed that the adsorption of QDNPs followed first- and second-order kinetic interactions at low and high ISs, respectively. These results indicate that the well-known colloid filtration theory that assumes irreversible firstorder kinetics for colloid deposition is not suitable for describing the QDNP adsorption. The findings in our work can aid better description and prediction of fate and transport of QDNPs in subsurface environments.
机译:本研究综合批量实验和理论计算,以了解CDSES / Zns合金量子点纳米粒子(QDNPS)在不同离子强度下的平衡吸附和动力学相互作用(ISS; 0.001-0.2M NaCl)。我们的实验结果表明,固相和块溶液之间的QDNP浓度达到平衡,由于QDNPS在沙面上的可逆吸附。 Derjaguin-landau-verwey-verwey-octbeek(DLVO)相互作用能量计算表明,排斥能量屏障低,原发性井在所有测试溶液ISS中的浅(即,与胶体的平均动能相当)。因此,QDNP可以通过布朗扩散从初级井中动员和同时逃离初级孔,导致可逆吸附。额外的批量实验证实,即使没有任何系统条件的扰动,也释放了一部分吸附的QDNP。释放在较低的情况下更明显是因为主要能量孔在低ISS下更狭窄地跨越,因此纳米颗粒具有更高的逃逸可能性。批量动力学实验表明,QDNPS的吸附分别在低和高ISS下进行第一和二阶动力学相互作用。这些结果表明,众所周知的胶体过滤理论,其假设用于胶体沉积的不可逆的第一阶动力学不适合于描述QDNP吸附。我们工作中的调查结果可以帮助更好地描述和预测地下环境中的QDNP的命运和运输。

著录项

  • 来源
    《Journal of Contaminant Hydrology》 |2021年第6期|103799.1-103799.9|共9页
  • 作者单位

    China Agr Univ Dept Soil & Water Sci Beijing 100193 Peoples R China;

    China Agr Univ Dept Soil & Water Sci Beijing 100193 Peoples R China|Minist Agr Dept Agr Extens Dhaka 1215 Bangladesh;

    US EPA Oak Ridge Inst Sci & Educ Ada OK 74820 USA;

    Southern Univ Sci & Technol Dept Mech & Aerosp Engn Shenzhen 518055 Guangdong Peoples R China;

    China Agr Univ Dept Soil & Water Sci Beijing 100193 Peoples R China;

    China Agr Univ Dept Soil & Water Sci Beijing 100193 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Quantum dots; Adsorption; Desorption; Transport; And porous media;

    机译:量子点;吸附;解吸;运输;和多孔媒体;

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