g-C3N4量子点-TiO2/导电凹凸棒石复合材料的制备及其光催化性能

Preparation of g-C3N4 quantum dot-TiO2/conductive attapulgite composites and their photocatalytic performance

  • 摘要: 通过水热法在导电凹凸棒石(C-ATP)表面原位生长TiO2纳米棒制得毛虫状结构的TiO2/C-ATP复合材料,然后以TiO2/C-ATP为载体,在TiO2纳米棒表面进一步复合g-C3N4量子点(CNQD)成功制备了多级结构的CNQD-TiO2/C-ATP异质结光催化材料。利用XRD、FTIR、SEM/TEM、紫外-可见吸收光谱(UV-Vis-DRS)、荧光发射光谱(PL)、BET比表面积分析仪和光电化学等技术对样品进行表征。在可见光照射下,考察了样品对盐酸四环素(TC)的光催化降解能力。结果表明:与TiO2/C-ATP和CNQD相比,CNQD-TiO2/C-ATP大幅提高了可见光响应、吸收能力和光生电子-空穴对的分离效率。当光照时间为120 min时,CNQD-TiO2/C-ATP对TC去除率可达88%。

     

    Abstract: TiO2/C-ATP composites consisting of palmerworm-like TiO2 nanorods in-situ growth on the surface of conductive attapulgite (C-ATP) were constructed via a hydrothermal approach. Then TiO2/C-ATP was used as the carrier to uniformly load carbon nitride quantum dots (CNQD) to successfully prepare hierarchical CNQD-TiO2/C-ATP heterojunction photocatalysts. The obtained samples were characterized by XRD, FTIR, SEM/TEM, ultraviolet-visible (UV-Vis-DRS), photoluminescence (PL), Brunauer-emmett-teller (BET) specific area analyzer and photoelectrochemistry. The degradation ability of the sample to tetracycline hydrochloride (TC) was investigated under visible light. The results show that CNQD-TiO2/C-ATP composites dramatically enhance the visible light response, the absorption capacity and the separation of photogenerated electron-hole pairs compared to TiO2/C-ATP and CNQD. After 120 min irradiation, the degradation rate of CNQD-TiO2/C-ATP to remove TC can achieve 88%.

     

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