...
首页> 外文期刊>Catalysts >Microwave-Assisted Solvothermal Synthesis of Chalcogenide Composite Photocatalyst and Its Photocatalytic CO 2 Reduction Activity under Simulated Solar Light
【24h】

Microwave-Assisted Solvothermal Synthesis of Chalcogenide Composite Photocatalyst and Its Photocatalytic CO 2 Reduction Activity under Simulated Solar Light

机译:微波辅助溶解的硫属元素复合光催化剂合成及其光催化CO 2模拟太阳灯下的减少活性

获取原文

摘要

A novel heterostructure consisting of Ru and Cu co-doped ZnS nanopowders (RCZS) into a MoS 2 -graphene hybrid (MSG) is successfully prepared by the microwave-assisted solvothermal approach. RCZS nanopowders are fabricated on the surface of MSG, which produces a nanoscale interfacial between RCZS and MSG. As the photo-excited electrons of RCZS can easily migrate to MoS 2 through graphene by hindering the electron and hole (e – and h + ) recombination, the photocatalytic activity could be improved by effective charge transfer. As RCZS are anchored onto the MSG, the photoluminescence intensity of the chalcogenide composite photocatalyst obviously decreases. In addition, a quaternary ruthenium and copper-based chalcogenide RCZS/MSG is able to improve the harvest and utilization of light. With the increase in the concentrations of Ru until 4 mol%, the band gap significantly decreases from 3.52 to 2.73 eV. At the same time, moderate modification by ruthenium can decrease the PL intensity compared to the pristine CZS/MSG sample, which indicates the enhancement of e – and h + separation by Ru addition. The photocatalytic activity of as-synthesized chalcogenide composite photocatalysts is evaluated by the photocatalytic carbon dioxide reduction. Optimized operation conditions for carbon dioxide reduction have been performed, including the concentration of NaOH solution, the amount of RCZS/MSG photocatalyst, and the content of co-doped ruthenium. The doping of ruthenium would efficiently improve the performance of the photocatalytic activity for carbon dioxide reduction. The optimal conditions, such as the concentration of 2 M NaOH and the 0.5RCZS/MSG dosage of 0.05 g L –1 , provide the maximum methane gas yield of 58.6 μmol h ?1 g –1 .
机译:通过微波辅助的溶剂热方法成功地制备了由Ru和Cu和Cu的共掺杂ZnS纳米粉(RCZ)组成的新型异质结构(RCO-掺杂的ZnS纳米粉(RCZ)。 RCZS纳米粉末在MSG的表面上制造,其在RCZ和MSG之间产生纳米级界面。由于RCZ的光激发电子可以通过阻碍电子和孔(E - 和H +)重组来容易地通过石墨烯迁移到MOS 2,因此通过有效的电荷转移可以提高光催化活性。随着RCZ锚定在MSG上,硫属化物复合光催化剂的光致发光强度明显降低。此外,季甲钌和基于铜基硫属元素化物RCZS / MSG能够改善光的收获和利用。随着ru浓度的增加,直到4摩尔%,带隙从3.52到2.73eV显着降低。同时,与原始CZS / MSG样品相比,钌的适度改性可以降低PL强度,这表明通过Ru加入的E - 和H +分离的增强。通过光催化二氧化碳还原评估了用光催化剂复合光催化剂的光催化活性。已经进行了用于二氧化碳还原的优化操作条件,包括NaOH溶液的浓度,RCZS / MSG光催化剂的量,以及共掺杂钌的含量。钌的掺杂将有效地改善光催化活性对二氧化碳减少的性能。最佳条件,例如2 m NaOH的浓度和0.05g -1的0.5RCZ / MSG剂量,提供58.6μmolH= 1g -1的最大甲烷气产率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号