4.8 Article

Unraveling the Synergistic Reaction and the Deactivation Mechanism for the Catalytic Degradation of Double Components of Sulfur-Containing VOCs over ZSM-5-Based Materials

期刊

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.2c04033

关键词

sulfur-containing VOCs; synergistic catalytic decomposition; competitive adsorption; carbon and sulfur deposition; deactivation mechanism

资金

  1. National Natural Science Foundation of China [42030712, 22106055, 21966018, 42207127]
  2. Key Project of Natural Science Foundation of Yunnan Province [202101AS070026]
  3. Applied Basic Research Foundation of Yunnan Province [202201AT070086, 202101AU070025, 202101BE070001-026, 202105AE160019]
  4. Yunnan Ten Thousand Talents Plan Young & Elite talents Project [YNWR-QNBJ-2018-067]

向作者/读者索取更多资源

This study provides insights into the competitive adsorption, catalysis, reaction, and deactivation mechanisms for decomposing double components of sulfur-containing VOCs, with lanthanum-modified ZSM-5 showing potential environmental application due to its excellent stability and water resistance.
The competitive adsorption behavior, the synergistic catalytic reaction, and deactivation mechanisms under double components of sulfur-containing volatile organic compounds (VOCs) are a bridge to solve their actual pollution problems. However, they are still unknown. Herein, simultaneous catalytic decomposition of methyl mercaptan (CH3SH) and ethyl mercaptan (C2H5SH) is investigated over lanthanum (La)-modified ZSM-5, and kinetic and thermodynamic results confirm a great difference in the adsorption property and catalytic transformation behavior. Meanwhile, the new synergistic reaction and deactivation mechanisms are revealed at the molecular level by combining with in situ diffuse reflectance infrared spectroscopy (in situ DRIFTS) and density functional theory (DFT) calculations. The CH3CH2* and SH* groups are presented in decomposing C2H5SH, while the new species of CH2*, active H* and S*, instead of CH3* and SH*, are proved as the key elementary groups in decomposing CH3SH. The competitive recombining of SH* in C2H5SH with highly active H* in dimethyl sulfide (CH3SCH3), an intermediate in decomposing CH3SH, would aggravate the deposition of carbon and sulfur. La/ZSM-5 exhibits potential environmental application due to the excellent stability of 200 h and water resistance. This work gives an understanding of the adsorption, catalysis, reaction, and deactivation mechanisms for decomposing double components of sulfur-containing VOCs.

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