首页> 外文学位 >Xerogel-Sequestered Transition Metal Catalysts for the Activation of Hydrogen Peroxide in Antifouling Applications: Stability and Possible Mechanism of Catalytic Oxidation.
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Xerogel-Sequestered Transition Metal Catalysts for the Activation of Hydrogen Peroxide in Antifouling Applications: Stability and Possible Mechanism of Catalytic Oxidation.

机译:防污应用中用于干燥过氧化氢的Xergel螯合过渡金属催化剂:稳定性和催化氧化的可能机理。

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摘要

The accumulation of microorganisms, plants, algae, or animals on wetted structures is known as marine fouling or biofouling. Marine biofouling increases the surface roughness of submerged structures. This added roughness corresponds to an increased hydrodynamic drag, which significantly impedes the efficient movement of a vessel through water. Additional fuel expenditures to counteract the inefficiencies brought on by drag prompt increased greenhouse gas emissions. Furthermore, organismal attachment to sea bound vessels impose substantial ecological threats by introducing invasive species into various waterways.;The majority of mainstream antifouling technologies employed are paints that utilize topographical variations or the slow leach of biocides to deter organismal settlement. These formulations, however, commonly involve arduous application procedures and/or produce biocidal leachates that may accumulate in marine organisms and environments. The potential to generate biocides in situ presents a promising alternative for the control of biofouling. By utilizing naturally occurring chemicals in seawater to produce environmentally benign deterrents, fouling may be controlled without employing detrimental biocides or costly multifaceted topographical paints.;Although a kinetically slow process, naturally occurring aqueous halide salts in seawater may be oxidized in the presence of H2O2 to generate hypohalous acids in situ. These oxidized halide species may then act as negative settlement cues, deterring the settlement of marine fouling organisms on submerged surfaces. Silica based xerogel coatings introduce an excellent platform for the sequestration of catalysts to be used for the oxidation of aqueous halide species in seawater. By incorporating a catalyst into the silica matrix of a xerogel coating, the continuous production of oxidized halide species on the surface generates a biocide from naturally occurring reagents, thus eliminating the need for coatings that rely on the production of toxic biocidal leachates.;Transition metal catalysts sequestered into the inorganic framework of silica xerogels have shown immense promise for the catalytic oxidation of aqueous halides. Kinetic evaluation of these catalysts has demonstrated improved rates for the oxidation of bromide, in addition to evidence for the first catalytic oxidation of chloride utilizing a xerogel sequestered catalyst at ambient conditions. Elucidation of the stability, identity, and mechanism of catalysis for titanium and tungsten sequestered xerogel catalysts for their use as antifouling coatings is discussed within.
机译:微生物,植物,藻类或动物在潮湿结构上的积累被称为海洋污染或生物污染。海洋生物污染增加了水下结构的表面粗糙度。这种增加的粗糙度对应于增加的流体动力阻力,这显着阻碍了船只在水中的有效运动。为了抵消阻力带来的效率低下,额外的燃料支出促使温室气体排放量增加。此外,通过将入侵物种引入各种水道,生物附着在海底船只上会给生态带来严重威胁。大多数主流的防污技术是利用地形变化或缓慢杀生物剂浸出来阻止生物沉降的涂料。然而,这些制剂通常涉及繁重的施用程序和/或产生可能在海洋生物和环境中积累的杀生物浸出液。原位产生杀生物剂的潜力为控制生物污垢提供了有希望的替代方法。通过利用海水中天然存在的化学物质来生产对环境无害的威慑剂,可以在不使用有害杀生物剂或昂贵的多层面形涂料的情况下控制结垢。虽然动力学过程很慢,但海水中天然存在的卤化物盐在H2O2存在下可被氧化为原位产生次卤酸。这些氧化的卤化物物种然后可以充当负沉降线索,从而阻止海洋污损生物在水下表面的沉降。二氧化硅基干凝胶涂料为螯合用于氧化海水中卤化物水溶液的催化剂提供了一个极好的平台。通过将催化剂掺入干凝胶涂层的二氧化硅基质中,表面上连续生成氧化卤化物物种可从天然存在的试剂中产生杀生物剂,从而消除了对依赖于产生有毒杀生物渗滤液的涂层的需求。螯合到二氧化硅干凝胶的无机骨架中的催化剂已显示出对卤化水溶液进行催化氧化的巨大希望。除了在环境条件下使用干凝胶螯合的催化剂进行氯化物的首次催化氧化的证据外,这些催化剂的动力学评估还显示出溴化物氧化速率的提高。其中讨论了钛和钨螯合干凝胶催化剂用作防污涂料的稳定性,特性和催化机理。

著录项

  • 作者

    Lang, Meredith Anita.;

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Chemistry.
  • 学位 M.A.
  • 年度 2018
  • 页码 84 p.
  • 总页数 84
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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