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A review on trends in lignin extraction and valorization of lignocellulosic biomass for energy applications

Journal

JOURNAL OF CLEANER PRODUCTION
Volume 293, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.jclepro.2021.126123

Keywords

Biorefinery; Activated carbon; Supercapacitor; Hydrogen storage; Bio-derived materials

Funding

  1. DGAPA (Direccion General de Asuntos del Personal Academico) under PAPIIT [IA203320, IN110118, IG100720]
  2. Consejo Nacional de Ciencia y Tecnologia (CONACYT)

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This review summarizes various lignin extraction methods, pre-treatments, and their influence on yield and properties, as well as investigates thermochemical conversion of lignin-based biomass and its application in supercapacitors and hydrogen storage. The study highlights the importance of chemical extraction via the organosolv process in preserving lignin structure and purity compared to sulfur processes. Moreover, parameters such as extraction method, temperature, pH, resident time, and pressure significantly affect the Kappa value and yield of lignin.
The various lignin isolation methods and pretreatments are continuously developing and thermo-chemical conversion of lignocellulosic biomass and tuning of the activation parameters are vital to obtaining high energy density materials. In this review, different lignin extraction methods, pre-treatments, and influence of the extraction conditions on the yield and properties are presented. The thermochemical conversion of lignin-based biomass and application in supercapacitors and hydrogen storage were investigated. The study revealed that chemical extraction via the organosolv process pre-sents higher purity and partly preserved lignin structure compared to sulfur processes. Different pa-rameters such as the method of extraction, the temperature, pH, resident time, and pressure greatly influences the Kappa value and yield of lignin. The potassium hydroxide (KOH) dosage as an activating agent and the activating temperature is vital to obtaining high surface area and microporosity, which enhances the lignin-based activated carbon performance towards high hydrogen storage and capaci-tance. Metals doping on activated carbon marginally enhance the hydrogen storage capacity and capacitance, however, reversible desorption of the adsorbed hydrogen requires a higher temperature for hydrogen storage. Besides, high metal doping reduces available surface area, collapses the cage-like structures of fullerenes, and results in lower hydrogen storage capacity of activated carbon. The pres-ence of heteroatoms on activated carbons enhances the performance towards high hydrogen storage and capacitance. Moreover, techno-economic and exergy-based sustainability analysis of the different lignin isolation techniques must be explored to provide valuable insights on energy and associated operational costs. (c) 2021 Elsevier Ltd. All rights reserved.

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