<span id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
<span id="fpn9h"><noframes id="fpn9h">
<th id="fpn9h"></th>
<strike id="fpn9h"><noframes id="fpn9h"><strike id="fpn9h"></strike>
<th id="fpn9h"><noframes id="fpn9h">
<span id="fpn9h"><video id="fpn9h"></video></span>
<ruby id="fpn9h"></ruby>
<strike id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>

ZnO NP/g-C3N4柱撐結構復合材料構建及NO光氧化脫除研究

Fabrication of ZnO NP/g-C3N4 column brace structure composites and study on NO photocatalytic oxidation removal performance

  • 摘要: 隨著現代工業的飛速發展,如何實現氮氧化物的有效脫除成為目前亟待解決的重要難題. 本研究提出了一種在石墨相氮化碳(g-C3N4)表面原位生長納米氧化鋅點陣構建柱撐結構復合材料策略,以實現在可見光下光氧化去除NO. 通過離子吸附反應,成功制備了不同氧化鋅顆粒負載量的ZnO NP/g-C3N4柱撐結構復合光氧化劑,并對其結構和電子特性進行了研究. 結果表明,氧化鋅納米顆粒(ZnO NP)的引入改善了g-C3N4的團聚,提高了比表面積,暴露出更多活性位點. 異質結構的構建改善了復合材料能帶結構,促進了光生載流子的遷移及分離,光氧化性能顯著提升. 在可見光照射下質量分數為2.5%的ZnO NP/g-C3N4樣品展現出了優異的光氧化性能,對NO體積分數為3×10-5%以下的混合空氣光氧化去除表現出優良的高效穩定性. 本研究為高性能光氧化劑的設計與構建提供了有效策略,并為消除工業NO污染物提供了技術參考.

     

    Abstract: With the rapid industrial development, air pollution and global climate change have become pressing issues. Addressing the effective removal of nitrogen oxides (NOx), a major contributor to these problems, is crucial. Photo-oxidation technology emerges as a promising solution, offering a new, green method of NOx removal. This technology stands out for its safety, cost-effectiveness, cleanliness, and cycle stability, making it an efficient approach to tackling NOx emissions. In this study, we explore a novel strategy that involves the in-situ growth of ZnO nanodot arrays on surfaces of graphite-phase carbon nitride (g-C3N4) to construct column-supported structure composites. These composites are designed for the photo-oxidation removal of NO under visible light. By employing an ion adsorption reaction, ZnO NP/g-C3N4 column-supported structure composite photo-oxidizers were successfully synthesized with varying ZnO particle mass fractions of 1%, 2.5%, and 5%, respectively. The investigation revealed that introducing ZnO NP significantly increases the specific surface area of the ZnO NP/g-C3N4 composites compared to pure g-C3N4 samples, which have a specific surface area of 31.092 m2·g?1. Specifically, the 2.5% ZnO NP/g-C3N4 composites exhibited a substantial increase to 58.063 m2·g?1, while the 1% and 5% ZnO NP/g-C3N4 composites reached 37.141 m2·g?1 and 42.563 m2·g?1, respectively. This enhancement in the specific surface area, attributed to the columnar support structure, addresses the stacking issue of the g-C3N4 lamellae in the composites. The resulting structure is stretchier and fluffier, exposing a greater number of reactive sites. Furthermore, the construction of a heterostructure improves the energy band structure of the composites, facilitating the migration and separation of photogenerated carriers, which significantly enhances the photo-oxidation performance. During the NO photo-oxidation removal experiments, the ZnO NP/g-C3N4 composites demonstrated a marked improvement in photo-oxidation efficiency compared to pure g-C3N4. Notably, the 2.5% ZnO NP/g-C3N4 composites achieved a 100% photo-oxidation removal rate of NO, maintaining an effective removal performance across different NO concentrations and exhibiting robust performance in five cycles of stability tests. This study provides an effective strategy for designing and constructing high-performance photo-oxidizers and provides a technical reference for eliminating industrial NO pollutants. In addition, our study introduces a method for the photo-oxidation removal of NO and inspires new approaches in the design and synthesis of composite photocatalysts. By modulating the composition and structure of these composites, their photo-oxidation performance can be further optimized to achieve more efficient and stable pollutant removal. This advancement holds significant implications for environmental protection and sustainable development.

     

/

返回文章
返回
<span id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
<span id="fpn9h"><noframes id="fpn9h">
<th id="fpn9h"></th>
<strike id="fpn9h"><noframes id="fpn9h"><strike id="fpn9h"></strike>
<th id="fpn9h"><noframes id="fpn9h">
<span id="fpn9h"><video id="fpn9h"></video></span>
<ruby id="fpn9h"></ruby>
<strike id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
www.77susu.com