Phan Hoa T, Geng Shenghao, Haes Amanda J
Department of Chemistry, University of Iowa, Iowa City, Iowa, USA.
Nanoscale. 2020 Dec 8;12(46):23700-23708. doi: 10.1039/d0nr06296k.
Silica membrane stabilized gold coated silver (Ag@Au) (i.e., internally etched silica coated Ag@Au (IE Ag@Au@SiO2)) nanoparticles promote surface-enhanced Raman scattering (SERS) activity and detection of uranium(vi) oxide (uranyl) under harsh solution phase conditions including at pH 3-7, with ionic strengths up to 150 mM, and temperatures up to 37 °C for at least 10 hours. These materials overcome traditional solution-phase plasmonic nanomaterial limitations including signal variability and/or degradation arising from nanoparticle aggregation, dissolution, and/or surface chemistry changes. Quantitative uranyl detection occurs via coordination to 3-mercaptopropionate (MPA), a result confirmed through changes in correlated SERS intensities for uranyl and COOH/COO- vibrational modes. Quantification is demonstrated down to 110 nM, a concentration below toxic levels. As pH varies from 3 to 7, the plasmonic properties of the nanoparticles are unchanged, and the uranyl signal depends on both the protonation state of MPA as well as uranyl solubility. High ionic strengths (up to 150 mM) and incubation at 37 °C for at least 10 hours do not impact the SERS activity of uranyl even though slight silica dissolution is observed during thermal treatment. All in all, microporous silica membranes effectively protect the nanoparticles against variations in solution conditions thus illustrating robust tunability for uranyl detection using SERS.
二氧化硅膜稳定的金包银(Ag@Au)(即内部蚀刻的二氧化硅包覆的Ag@Au(IE Ag@Au@SiO₂))纳米颗粒在包括pH值为3 - 7、离子强度高达150 mM以及温度高达37°C且至少持续10小时的苛刻溶液相条件下,能促进表面增强拉曼散射(SERS)活性并检测氧化铀(铀酰)。这些材料克服了传统溶液相等离子体纳米材料的局限性,包括由于纳米颗粒聚集、溶解和/或表面化学变化而产生的信号变异性和/或降解。通过与3 - 巯基丙酸(MPA)配位实现铀酰的定量检测,铀酰和COOH/COO⁻振动模式的相关SERS强度变化证实了这一结果。检测限低至110 nM,该浓度低于有毒水平。当pH值从3变化到7时,纳米颗粒的等离子体性质不变,铀酰信号取决于MPA的质子化状态以及铀酰的溶解度。高离子强度(高达150 mM)和在37°C下孵育至少10小时不会影响铀酰的SERS活性,尽管在热处理过程中观察到轻微的二氧化硅溶解。总而言之,微孔二氧化硅膜有效地保护纳米颗粒免受溶液条件变化的影响,从而说明了使用SERS检测铀酰具有强大的可调性。