Hydrothermal conversion of lignocellulosic biomass has emerged as a viable thermochemical pathway for the sustainable production of bio-based platform chemicals or intermediates and then finally upgraded into biofuels. This approach evaluates the efficiency of hydrothermal hydrolysis in depolymerizing plant biomass that results in fermentable sugars and also value-added intermediates. It pushes to transform into transport grade biofuels via aligning with circular-economy principles and carbon-neutrality targets. This review analyzes key process parameters from a few selected experimental investigations, demonstrating favorable hydrothermal performance. The referenced studies were conducted at temperatures (ranging from 180 to 280 °C) and residence times (of 30-120 min) with optimal pressure range during thermochemical reaction. The study of these parameters enables the determination of optimal operating conditions for the fractionation of diverse biomasses. At 250 °C for 90 min, hydrolysis of waste lignocellulosic biomass achieved high cellulose conversion (67.5%) and hemicellulose degradation (54.2%) that demonstrates the production of significant quantities of furfural (3.8 wt%) and levulinic acid (4.5 wt%) as important platform chemicals. In parallel, hydrothermal liquefaction was conducted at temperature (300 °C) and pressure (10 MPa) that produced biocrude oils with an energy density (nearly 32 MJ kg-1). This highlighted its further potential as a renewable alternative to fossil-derived fuels with results of biochar (containing 68% fixed carbon) via exhibiting high adsorption capacity and surface area. These properties of biochar made it suitable for bioremediation, soil enhancement, and long-term carbon sequestration applications. Life-cycle assessment (LCA) study of advanced or sustainable biofuel showed its results with an indication of a 47% reduction in greenhouse-gas emissions compared with conventional petroleum-based fuel systems. Further, climate-mitigation potential of hydrothermal technologies findings is validated as a robust pathway via efficient hydrothermal hydrolysis for biomass valorization and resource recovery within sustainable production frameworks. These analyses further underscore the need to transition from energy-intensive thermal conversion methods toward more efficient hydrothermal systems. Future research needs to focus on improving product selectivity via optimizing reactor design, and integrating hydrothermal processes within biorefinery. These research concepts can improve architecture to enhance overall environmental and economic sustainability.
Background: Bioethanol is gaining prominence as an eco-friendly alternative to fossil fuels, offering the potential to combat global warming and reduce greenhouse gas emissions. This study explores microalgae, specifically Spirogyra from Ajiwa Dam of Katsina State, Nigeria, as a third-generation biomass for bioethanol...
A. A., Muntari B., Assim H. Flayyih et al.· Journal of Biotechnology Res...· 0 citations
The urgent need for bio-based functional materials has driven a shift away from fossil-fuel-sourced materials toward renewable lignocellulosic biomass (LCB). This comprehensive review explores the advancements in LCB carbonization between 2020 and 2026, marking a shift from traditional, low-yield combustion processes t...
H. Appiah, Sang Hyeok Park, J. V. Tongco· C++ Conference· 1 citation
The global search for sustainable biofuels has accelerated due to the depletion of fossil fuel reserves and growing environmental concerns about greenhouse gas emissions. Because these are widely available and have the potential to lower carbon footprints. Bioethanol made from lignocellulosic biomass stands out among o...
S. Mazhar, Isha Ijaz, M. Zafar et al.· RSC Advances· 0 citations
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