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Interactions of nitrogen and hydrogen with various 1D and 3D carbon materials probed via in-situ vibrational spectroscopy.

机译:氮和氢与各种1D和3D碳材料之间的相互作用通过原位振动光谱法进行了探测。

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摘要

Nanostructured carbon materials are perhaps the most widely studied adsorbents, and cryogenic nitrogen adsorption is likely the most common method to assess textural properties of adsorbents. Yet, in-situ vibrational spectroscopic studies of nitrogen's interactions with three nanostructured carbon materials have provided new insight into carbon-nitrogen interactions.;In this dissertation I present the work of 2 projects: (i) Study of the interaction of N2 with different carbon geometries at a molecular level and (ii) exploration of novel C-H interactions on carbon materials via mechano-chemistry. Both of these projects utilize in-situ Raman spectroscopy for exploring gas-surface interactions. Chapters 2 and 3 explore the interaction of molecular Nitrogen on carbon surfaces. With complementary theoretical studies and systematic experimental studies at various temperatures and pressures for different surfaces, I demonstrate how the spectroscopic peak features of N2 gives an indication of gas-surface binding energy, pore structure, and surface chemistry. Using 1D and 3D carbon architectures, spectroscopic perturbation of N2 is probed as a function of adsorption potential and pore dimension, and the spectroscopic response is mapped to the cryogenic volumetric adsorption isotherms. Whereas the latter required multiple days and ∼100 mg of sample, the spectroscopic technique provided similar structural information in the matter of a few hours for a few micrograms of the sample. It is anticipated that the development of the site-specific spectroscopic technique will advance the understanding of adsorbent geometry versus chemical functionality in a way not possible with deconstruction of bulk gas adsorption measurements of pore dimension, surface area, and diffusivity.;The second project probed mechanochemical means to polymerize aromatics and hydro-aromatics in the presence of hydrogen in an attempt to form localized carbon cages that trap hydrogen. Interesting aspects of the phase change of the carbon structures have been demonstrated with complex characterization techniques utilised throughout this project are described in Chapter 4 and 5. The introduction (Chapter 1) provides an overview on vibrational spectroscopy, porous carbons, theoretical models for porosity measurements and mechanochemistry and Chapter 6 summarises the conclusions with some future directions.
机译:纳米结构碳材料可能是研究最广泛的吸附剂,而低温氮吸附可能是评估吸附剂质地特性的最常用方法。然而,氮与三种纳米结构碳材料的相互作用的原位振动光谱研究为碳-氮相互作用提供了新的见解。本文中,我提出了两个项目的工作:(i)研究N2与不同碳的相互作用分子水平的几何形状;(ii)通过机械化学探索碳材料上新的CH相互作用。这两个项目都利用原位拉曼光谱技术来探索气体表面相互作用。第2章和第3章探讨了分子氮在碳表面上的相互作用。通过互补的理论研究和在不同温度和压力下不同表面的系统实验研究,我证明了N2的光谱峰特征如何指示气体-表面结合能,孔结构和表面化学性质。使用1D和3D碳结构,探测N2的光谱扰动与吸附势和孔径的函数关系,并将光谱响应映射到低温体积吸附等温线。后者需要数天的时间和约100 mg的样品,而光谱技术仅需几个小时就可以为几微克样品提供类似的结构信息。可以预期的是,特定位置光谱技术的发展将以对解构孔尺寸,表面积和扩散率的散装气体吸附测量无法实现的方式,来促进对吸附剂几何形状与化学功能的了解。机械化学方法是在氢存在下聚合芳烃和氢芳烃,以试图形成捕获氢的局部碳笼。碳结构相变有趣的方面已在第4章和第5章中通过整个项目中使用的复杂表征技术进行了演示。简介(第1章)概述了振动光谱,多孔碳和孔隙度测量的理论模型以及力学化学,第六章总结了这些结论,并提出了一些未来的方向。

著录项

  • 作者

    Ray, Paramita.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Analytical chemistry.;Physical chemistry.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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