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Carbon Capture Methods Utilizing Organosulfur Compounds

机译:利用有机硫化合物的碳捕获方法

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摘要

The US National Academy of Sciences and The Royal Society have recently released a detailed report on the causes and effects of global climate change. 1 This report states that the Earth's climate is rapidly changing due to human activity. Specifically, the burning of fossil fuels to satisfy the energy demands of rising global population has resulted in unprecedented levels of greenhouse gasses in the atmosphere. These high levels of greenhouse gasses are serving to warm the surface of the planet resulting in extreme weather events. Thus, controlling the atmospheric CO2 level is motivating a great deal of scientific research in the area of carbon capture and storage (CCS).;Despite the great strides being made in the areas of alternative energy and solar-energy conversion, consumption of fossil fuels for energy generation will likely continue into the foreseeable future. This is primarily motivated by economic factors inasmuch as fossil fuels are a proven resource base with robust harvesting and distribution infrastructure.2 Presently, there are more than 8,000 stationary CO2 emission sources with an annual output of 13,466 megatons of CO2 per year.2 In this context, development of systems that ameliorate the output of greenhouse gasses from stationary CO2 sources, such as coal and natural gas burning power plants, is urgently needed.;In this document the utility of sulfur nucleophiles for CCS schemes is explored. The main thrust of the research has been utilizing electrogenerated sulfur nucleophiles to capture CO2, which can be electrochemically recovered from the resulting thiocarbonates while concomitantly regenerating the masked capture agent. Further, a temperature swing CO2 capture scheme that employs benzylthiolate as the CO2 sorbent is proposed and methods of manipulating the release temperature and kinetics were investigated. These reports represent the first application of organosulfur compounds toward CCS technologies and there are a number of newly reported compounds. The appendix deviates from the theme of the first four chapters to describe the functionalization of poly(2,6-dimethyl-1,4-phenylene oxide) with ferrocene moieties by the copper catalyzed azide-alkyne coupling reaction. This material is discussed within the context of anion recognition and sensing applications.
机译:美国国家科学院和皇家学会最近发布了有关全球气候变化的成因和影响的详细报告。 1该报告指出,由于人类活动,地球的气候正在迅速变化。具体而言,燃烧化石燃料以满足不断增长的全球人口的能源需求已导致大气中温室气体的水平达到空前水平。这些高水平的温室气体正在使地球表面变暖,从而导致极端天气事件。因此,控制大气中的二氧化碳水平正在激发碳捕集与封存(CCS)领域的大量科学研究。;尽管在替代能源和太阳能转换,化石燃料的消耗方面取得了长足的进步能源的生产可能会持续到可预见的未来。这主要是受经济因素驱动的,因为化石燃料是经过验证的资源基础,具有强大的收割和分配基础设施。2目前,有8,000多个固定的CO2排放源,年产量为13,466百万吨CO2。2在此背景下,迫切需要开发能够改善固定CO2来源(例如煤和天然气发电厂)温室气体输出的系统。在本文件中,探索了硫亲核体在CCS计划中的实用性。该研究的主要目的是利用电生成的硫亲核试剂捕获CO2,该CO2可以从生成的硫代碳酸盐中电化学回收,同时伴随着被掩蔽的捕获剂的再生。此外,提出了使用苄基硫醇盐作为CO2吸附剂的变温CO2捕集方案,并研究了控制释放温度和动力学的方法。这些报告代表了有机硫化合物在CCS技术中的首次应用,并且有许多新报道的化合物。附录偏离了前四章的主题,描述了铜催化的叠氮化物-炔偶联反应将具有二茂铁部分的聚(2,6-二甲基-1,4-苯撑氧)官能化。本文将在阴离子识别和传感应用的背景下进行讨论。

著录项

  • 作者

    Rheinhardt, Joseph H.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Chemistry.;Molecular chemistry.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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