Article, 2024

Facile synthesis of Sn-doped MOF-5 catalysts for efficient photocatalytic nitrogen fixation

Applied Catalysis B Environmental, ISSN 1873-3883, 0926-3373, Volume 344, Page 123586, 10.1016/j.apcatb.2023.123586

Contributors

Li, Lixia [1] [2] Lv, Xiangyi [2] Jin, Liujuan [2] Du, Kexin [2] Jiang, Juhui (Corresponding author) [2] Zhao, Xiaohua [2] Liang, Huijun (Corresponding author) [3] Guo, Yuming 0000-0002-2351-4456 [2] Wang, Xiaobing 0000-0002-2136-639X (Corresponding author) [2]

Affiliations

  1. [1] Aarhus University
  2. [NORA names: AU Aarhus University; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Henan Normal University
  4. [NORA names: China; Asia, East];
  5. [3] Xinxiang University
  6. [NORA names: China; Asia, East]

Abstract

The utilization of Zn4O(1,4-benzenedicarboxylate)3 metal-organic framework (MOF-5) as a photocatalyst remains a substantial challenge owing to the limited stability under humid conditions and the low photocatalysis efficiency. Herein, a series of Sn-doped MOF-5 (Sn-MOF-5) were designed and fabricated for the photocatalytic N2 fixation using the specific T-tube photocatalysis reactor. Detailed characterization results illustrates that an appropriate amount of Sn4+ doping can not only enhance the specific surface area and reducing capacity of MOF-5, but also decrease the bandgap width and promote the separation of photogenerated carriers. Therefore, at a Zn:Sn ratio of 6, Sn-MOF-5 with the highest Sn4+ ratio shows superior catalytic performance with the ammonia (NH3) yield achieved 3912.76 μmol L−1 g−1 after 5 h, and the chemical stability is almost no decay after 15 h of continuous photocatalysis. This may offer a new strategy for improving catalytic performance and stability of MOF through doping Sn4+.

Keywords

G-1, MOF, MOF-5, N2 fixation, NH3, Sn4, T-tube, Zn, ammonia, amount, amount of Sn4, area, bandgap width, carriers, catalyst, catalytic performance, characterization, characterization results, chemical, chemical stability, conditions, continuous photocatalysis, doping, doping Sn4, efficiency, efficient photocatalytic nitrogen fixation, facile synthesis, fixation, framework, humidity conditions, improved catalytic performance, metal-organic frameworks, nitrogen fixation, performance, photocatalysis, photocatalysis efficiency, photocatalysis reactor, photocatalyst, photocatalytic N2 fixation, photocatalytic nitrogen fixation, ratio, reactor, reduced capacity, results, separation, separation of photogenerated carriers, stability, stability of MOFs, surface, surface area, utilization, width

Funders

  • National Natural Science Foundation of China

Data Provider: Digital Science