[1]李 丽,余 愿,孙东峰,等.Ru单原子负载g-C3 N4催化剂的制备及其光催化固氮性能研究[J].中国材料进展,2021,40(03):234-240.[doi:10.7502/j.issn.1674-3962.202102002]
 LI Li,YU Yuan,SUN Dongfeng,et al.Ruthenium Single Atoms Supported on Graphitic Carbon Nitride for Nitrogen Photofixation[J].MATERIALS CHINA,2021,40(03):234-240.[doi:10.7502/j.issn.1674-3962.202102002]
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Ru单原子负载g-C3 N4催化剂的制备及其光催化固氮性能研究()
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中国材料进展[ISSN:1674-3962/CN:61-1473/TG]

卷:
40
期数:
2021年第03期
页码:
234-240
栏目:
出版日期:
2021-03-30

文章信息/Info

Title:
Ruthenium Single Atoms Supported on Graphitic Carbon Nitride for Nitrogen Photofixation
文章编号:
1674-3962(2021)03-0234-07
作者:
李 丽12余 愿1孙东峰1许并社1
(1.陕西科技大学 材料原子分子科学研究所,陕西 西安 710021)(2.陕西科技大学材料科学与工程学院,陕西 西安 710021)
Author(s):
LI Li12 YU Yuan1 SUN Dongfeng1 XU Bingshe1
(1. Materials Institute of Atomic and Molecular Science, Shaanxi University of Science and Technology, Xi’an 710021, China) (2. School of Materials Science & Engineering, Shaanxi University of Science and Technology, Xi’an 710021, China.)
关键词:
Ru单原子g-C3N4氰基基团光催化固氮
Keywords:
Ru single atoms g-C3N4 cyano groups nitrogen photofixation
分类号:
O643.36;O644.1
DOI:
10.7502/j.issn.1674-3962.202102002
文献标志码:
A
摘要:
采用固相原位还原法成功合成了负载钌(Ru)单原子的石墨相氮化碳(g-C3N4)催化剂。研究结果表明,Ru以单原子形式分散在g-C3N4材料表面上,Ru的负载使g-C3N4的3-s-三嗪单元结构的有序度降低,通过傅里叶变换红外吸收光谱(FTIR)测试分析可知催化剂中含有氰基,氰基导致了分子结构缺陷。Ru和氰基均为电子受体,可加速光生电子的转移并作为催化活性位点。负载Ru单原子后,g-C3N4的光吸收范围变宽,光吸收强度增强,使得Ru单原子负载g-C3N4具有良好的光催化活性,光催化固氮效率高达113.23 μg·g-1cat·h-1,是单相g-C3N4催化剂的2.7倍。同时,Ru原子负载的g-C3N4还显示出很好的稳定性,经5次循环实验后光催化固氮效率仍能维持在106.75 μg·g-1cat·h-1。此外,通过光致发光光谱(PL)、电化学阻抗谱(EIS)等表征手段探究了Ru单原子g-C3N4的光催化固氮机理,其中氮气、超纯水和光照是使催化剂发挥光催化固氮作用的必要条件。
Abstract:
A catalyst of graphitic carbon nitride (g-C3N4) loaded with ruthenium (Ru) single atoms was synthesized by the method of solid phase in-situ reduction successfully. The results showed that Ru was dispersed on the surface of g-C3N4 as single atoms, and the loading of Ru reduced in-plane repeating units of g-C3N4. Through the analysis of FTIR, it was found that there were cyano groups in the catalyst, which led to the molecular structural defect. Both Ru atoms and cyano groups were electron acceptors, which could accelerate the transfer of photogenerated electrons and acted as photocatalytic active sites. After loading with Ru atoms, the light absorption range of g-C3N4 was widened and the absorption intensity was enhanced. Thus, the catalyst had excellent activity. Its photocatalytic nitrogen fixation efficiency was as high as 113.23 μg·g-1cat·h-1, 2.7 times that of the bare g-C3N4 catalyst. Meanwhile, the catalyst of g-C3N4 supported by Ru atoms also showed good stability, and the photocatalytic nitrogen fixation efficiency remained at 106.75 μg·g-1cat·h-1 after five cycles. In addition, the photocatalytic nitrogen fixation mechanism of the catalyst was investigated by PL, EIS and other characterization methods, in which nitrogen, ultrapure water and illumination were necessary conditions for the photocatalytic nitrogen fixation of the catalyst.

备注/Memo

备注/Memo:
收稿日期:2021-02-02 基金项目:国家自然科学基金项目(21972103);陕西省自然科学基础研究计划项目(2019JQ-276);陕西科技大学科研启动基金项目(2018XSGG-04, 2019BJ-02)第一作者:李 丽,女,1995年生,硕士研究生通讯作者:余 愿,男,1974年生,教授,博士生导师,     Email:yuyuan@sust.edu.cn
更新日期/Last Update: 2021-03-26