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TiO_2 Coated-Asphalt Buton Photocatalyst for High-Performance Motor Vehicles Gas Emission Mitigation

机译:TiO_2涂层沥青丁烯光催化剂用于高性能汽车的气体排放缓解

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Gas emission from motor vehicle has become the origin of many serious issues including health and air-quality, green house effect, and other environment issues. While motor vehicle manufacturers have set a particular standard of gas emission and motor vehicle aging, usage has contributed to the increase of hazardous gas emission from vehicles. Therefore, developing a special material that can adsorb the emitted gases should be continuously demonstrated. This paper reports the fabrication of a high-performance material, i.e., asphalt naturally found in Buton Island, Indonesia (asbuton), composited of anatase TiO_2 (ATi), for application in gas emission reduction, such as carbon monoxide (CO), carbon dioxide (CO_2), and other hydrocarbon gases (HC). ATi was prepared by coating the pre-extracted asbuton with anatase TiO_2 sol-gel via a spray-coating technique and annealed at 120 ℃ for 3 h. We found that the CO, CO_2, and HC gases can be effectively adsorbed by the ATi adsorbent as high as 600,1500, and 760 ppm, respectively, for exposure time of only 90 s each. The gas adsorption on the ATi obeys Langmuir and Freundlich isotherms. The maximum gas adsorption capacity was found to be as high as 95,238 and 2348 ppm (for CO_2 and HC, respectively). The availability of abundant -OH active ligand on Si-OH and Ti-OH and highly porous structure, as judged from the FTBR. and SEM analysis results, is assumed as the key reason for the high adsorption capacity of the ATi. The ATi should find a potential application in motor vehicle gas emission and air pollutant mitigation.
机译:机动车辆的气体排放已成为许多严重问题的根源,包括健康和空气质量,温室效应以及其他环境问题。尽管汽车制造商为气体排放和汽车老化设定了特定的标准,但使用量却增加了车辆有害气体的排放。因此,应不断证明开发一种可以吸收所排放气体的特殊材料。本文报道了一种高性能材料的制造,即天然橡胶在印尼Buton Island(asbuton)中发现,由锐钛矿TiO_2(ATi)复合而成,可用于减少气体排放,例如一氧化碳(CO),碳二氧化碳(CO_2)和其他碳氢化合物气体(HC)。通过喷涂技术用锐钛矿型TiO_2溶胶-凝胶涂覆预提取的酪蛋白,并在120℃退火3 h,制备ATi。我们发现,ATi吸附剂可分别分别以600,1500和760 ppm的高效率有效吸附CO,CO_2和HC气体,且每次暴露时间仅为90 s。 ATi上的气体吸附遵循Langmuir和Freundlich等温线。发现最大气体吸附容量高达95,238和2348 ppm(分别用于CO_2和HC)。根据FTBR的判断,Si-OH和Ti-OH上具有大量-OH活性配体,并且具有高度多孔的结构。 SEM分析结果被认为是ATi高吸附能力的关键原因。 ATi应该在机动车气体排放和减少空气污染物方面找到潜在的应用。

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