4.6 Article

Photocatalytic Pretreatment of Commercial Lignin Using TiO2-ZnO Nanocomposite-Derived Advanced Oxidation Processes for Methane Production Synergy in Lab Scale Continuous Reactors

Journal

CATALYSTS
Volume 11, Issue 1, Pages -

Publisher

MDPI
DOI: 10.3390/catal11010054

Keywords

lignin oxidation; AOP; PCO; TiO2-ZnO; CSTR

Funding

  1. National Natural Science Foundation of China [1191142, 11871202, 61673169, 11701176, 11626101, 11601485]

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The study developed a metal-derived photocatalyst for efficient oxidation pretreatment of lignocellulosic biomass, producing various acid compounds. The pretreated lignin diluent did not hinder reactor performance, and exhibited a significant increase in methane yield during continuous stirred tank reactor operation.
The photocatalytic pretreatment of lignocellulosic biomass to oxidize lignin and increase biomass stability has gained attention during the last few years. Conventional pretreatment methods are limited by the fact that they are expensive, non-renewable and contaminate the anaerobic digestate later on. The present study was focused to develop a metal-derived photocatalyst that can work with visible electromagnetic spectra light and oxidize commercial lignin liquor. During this project the advanced photocatalytic oxidation of lignin was achieved by using a quartz cube tungsten T3 Halogen 100 W lamp with a laboratory manufactured TiO2-ZnO nanoparticle (nanocomposite) in a self-designed apparatus. The products of lignin oxidation were confirmed to be vanillic acid (9.71 +/- 0.23 mg/L), ferrulic acid (7.34 +/- 0.16 mg/L), benzoic acid (6.12 +/- 0.17 mg/L) and p-coumaric acid (3.80 +/- 0.13 mg/L). These all products corresponded to 85% of the lignin oxidation products that were detectable, which is significantly more than any previously reported lignin pretreatment with even more intensity. Furthermore, all the pretreatment samples were supplemented in the form of feedstock diluent in uniformly operating continuously stirred tank reactors (CSTRs). The results of pretreatment revealed 85% lignin oxidation and later on these products did not hinder the CSTR performance at any stage. Moreover, the synergistic effects of pretreated lignin diluent were seen that resulted in 39% significant increase in the methane yield of the CSTR with constant operation. Finally, the visible light and nanoparticles alone could not pretreat lignin and when used as diluent, halted and reduced the methane yield by 37% during 4th HRT.

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