Wu K, Zhang Q, Zheng Y, Yuan J, Yu Q, Yang J, Lu J. Effect of W Modification on MoS
2 Surface Edge in the Ethanolysis of Lignin into Platform Chemicals.
CHEM & BIO ENGINEERING 2024;
1:725-736. [PMID:
39974319 PMCID:
PMC11835260 DOI:
10.1021/cbe.3c00062]
[Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 10/11/2023] [Revised: 01/04/2024] [Accepted: 01/04/2024] [Indexed: 02/21/2025]
Abstract
A series of metal-doped MoS2, including W-, V-, and Re-doped MoS2, are prepared via a two-step hydrothermal method, which presents higher activity on the depolymerization of enzymatic hydrolysis lignin (EHL) in ethanol as compared to undoped MoS2. At 320 °C for 6 h, the highest overall aromatic monomer yield of 231 mg/g EHL, including alkylphenols (A-Ps) as the main products with a yield of 126.5 mg/g EHL, is obtained over two-step hydrothermally prepared W-doped MoS2 with the W/Mo molar ratio of 0.1 (Ts-W0.1@MoS2). The W-doped MoS2 sample gives higher enhancement of EHL bio-oils' heating value to 37.1 MJ/kg as compared to Re and V modified MoS2. Large distribution of W atoms on the MoS2 surface in two-step hydrothermally synthesized samples leads to the higher activity of EHL depolymerization than one-step prepared samples. The reduction of W precursors on the MoS2 surface in the preparation process promotes the generation of more Mo5+ and Mo6+, which plays important roles in the improvement of EHL depolymerization activity. The effect of the W-doping modification and the stability of W-doped MoS2 are discussed. The anti-sulfur loss and antioxidant abilities are significantly enhanced after W-doping modification. In the recyclability test, the good incorporation of W atoms with MoS2 surface and the gradual oxidation of W-based sites improve the balance of catalytic cycles among different Mo-based sites, which results in the increase of catalyst stability.
Collapse