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Optical responses at the nanoparticle-biological interface with an introduction to optical microscopy in undergraduate analytical chemistry curriculum.

机译:纳米粒子-生物界面的光学响应,以及本科分析化学课程中光学显微镜的介绍。

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摘要

Plasmonic nanoparticles have been gaining attention in the medical field for their use as chemical and biological sensors, drug delivery vectors and contrast agents for cellular imaging; however, the ability to monitor the chemical binding events and drug delivery kinetics is limited. The majority of this body of work explores nanoparticles optical responses as they undergo energy transfer processes for biological sensing. The latter portion of this dissertation discusses optical microscopy in undergraduate analytical chemistry.;In the first experiment, plasmon resonance energy transfer between gold nanospheres and cytochrome c was investigated. As cytochrome c adsorbs to the surface of a nanoparticle, the plasmonic energy is transferred from the nanoparticle to cytochrome c, as a result there are spectral dips in the extinction spectrum of the gold nanoparticle. This optical phenomenon was studied in Hi-Fi microchannels and HeLa cells undergoing ethanol induced apoptosis.;The second set of experiments encompasses the observations of the optical changes of gold-capped mesoporous silica nanoparticles (MSNs) undergoing uncapping by dithiothreitol and glutathione. The uncapping process was studied in flow cells with dithiothreitol as the uncapping agent, and also in lung cancer cells using glutathione as the cleaving agent. Differential interference contrast (DIC) microscopy was employed to image the optical changes as gold is cleaved from MSNs.;As part of the chemical education project, an optical microscopy laboratory experiment was created, implemented and assessed in an instrumental analysis course for junior and senior level undergraduate chemistry students. Students were introduced to optical microscopy and nanoparticles through the use of a dark field microscope to image a reaction between copper wire and silver nitrate in the first section. In the second portion of the experiment, students imaged gold, silver and silica nanospheres with the aid of bandpass filters and were also introduced to the concept of localized surface plasmon resonances. There were two formats for the experiment, traditional and inquiry based. Students were split into two groups, each group performing one format of the experiment and their learning gains were monitored with the Chemical Optical Microscopy Assessment (COMA) that was created for this purpose. The learning outcomes based on the COMA and laboratory report scores were compared to determine with which instructional method students had higher learning gains.
机译:血浆等离子纳米颗粒作为化学和生物传感器,药物递送载体和细胞成像造影剂的使用已在医学领域引起关注。然而,监测化学结合事件和药物递送动力学的能力是有限的。当纳米粒子经历能量转移过程以进行生物传感时,大部分工作将探索纳米粒子的光学响应。本论文的后半部分讨论了本科生分析化学中的光学显微镜。在第一个实验中,研究了金纳米球与细胞色素c之间的等离振子共振能量转移。当细胞色素c吸附到纳米颗粒的表面时,等离子体能从纳米颗粒转移到细胞色素c,结果金纳米颗粒的消光光谱中存在光谱下降。在Hi-Fi微通道和HeLa细胞经历乙醇诱导的细胞凋亡中研究了这种光学现象。;第二组实验包括对二硫苏糖醇和谷胱甘肽解封金的介孔二氧化硅纳米粒子(MSN)光学变化的观察。在以二硫苏糖醇为解封剂的流通池中以及在以谷胱甘肽为裂解剂的肺癌细胞中研究了解封过程。差分干涉对比(DIC)显微镜用于对金从MSN中裂解后的光学变化进行成像。;作为化学教育项目的一部分,创建了光学显微镜实验室实验,在初级和高级仪器分析课程中进行了实验和评估本科化学专业学生。在第一部分中,通过使用暗场显微镜向学生介绍了光学显微镜和纳米颗粒,以对铜线和硝酸银之间的反应进行成像。在实验的第二部分中,学生借助带通滤光片对金,银和二氧化硅纳米球成像,并向他们介绍了局部表面等离子体激元共振的概念。实验有两种格式,传统格式和基于查询的格式。将学生分为两组,每组执行一种格式的实验,并为此目的创建的化学光学显微镜评估(COMA)监控了他们的学习成果。比较基于COMA和实验室报告分数的学习成果,以确定学生使用哪种教学方法获得更高的学习收益。

著录项

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Analytical chemistry.;Science education.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:18

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