Cellulose, Год журнала: 2024, Номер 31(16), С. 9907 - 9923
Опубликована: Окт. 9, 2024
Язык: Английский
Cellulose, Год журнала: 2024, Номер 31(16), С. 9907 - 9923
Опубликована: Окт. 9, 2024
Язык: Английский
Comprehensive Reviews in Food Science and Food Safety, Год журнала: 2024, Номер 23(2)
Опубликована: Фев. 19, 2024
Abstract Sugarcane ( Saccharum sp.) plants are grown in warmer climates throughout the world and processed to produce sugar as well other useful byproducts such molasses bagasse. is rich (poly)phenols, but there has been no attempt critically evaluate published information based on use of suitable methodologies. The objective this review quantitative qualitative (poly)phenolic profiles individual parts sugarcane plant its multiple industrial products, which will help develop new processes uses for (poly)phenols. analysis involves examination extraction, concentration, analytical techniques used each study part product. indicates identification various (poly)phenols processing chain, using only compounds elucidated through robust methodologies mass spectrometry or nuclear magnetic resonance. In conclusion, predominantly flavonoids phenolic acids. main flavonoids, derivatives apigenin, luteolin, tricin, with a substantial proportion C ‐glycosides, consistently found across all phases processing. principal acids reported process include chlorogenic acids, ferulic caffeic mostly observed after hydrolysis. derivation precise publications impeded by inconsistencies presence potential benefits applications health suggests could be provider valuable future research processes.
Язык: Английский
Процитировано
21International Journal of Biological Macromolecules, Год журнала: 2022, Номер 226, С. 345 - 356
Опубликована: Дек. 5, 2022
Язык: Английский
Процитировано
44European Polymer Journal, Год журнала: 2023, Номер 194, С. 112168 - 112168
Опубликована: Май 24, 2023
Язык: Английский
Процитировано
40Environmental Nanotechnology Monitoring & Management, Год журнала: 2023, Номер 20, С. 100791 - 100791
Опубликована: Фев. 8, 2023
Язык: Английский
Процитировано
38International Journal of Biological Macromolecules, Год журнала: 2024, Номер 277, С. 134512 - 134512
Опубликована: Авг. 5, 2024
Язык: Английский
Процитировано
13Biomass Conversion and Biorefinery, Год журнала: 2025, Номер unknown
Опубликована: Фев. 11, 2025
Язык: Английский
Процитировано
2Industrial Crops and Products, Год журнала: 2022, Номер 193, С. 116132 - 116132
Опубликована: Дек. 20, 2022
India is the largest producer of sugarcane in Asia and its sugar industry represents second agro-based industry. Sugarcane bagasse (SCB), a major waste from industries, indisputably lignocellulosic biomass (LCB) embedding ∼60 % carbohydrates, making it renewable source fermentable sugars. Despite unique chemical composition, SCB primarily used for co-generation. The enormous potential can be unleashed, if platform created using biochemical route. Sugars serve as feedstock fermentative production several fuels chemicals, considered key drivers rapid industrialization. US Department Energy has projected lactic acid (LA) one top biomass-derived chemicals owing to diverse applications multi-billion-dollar market. Currently, industrial LA predominated by microbial fermentation (∼90 %) which principally uses starchy or sugar-rich edible feedstocks. If low-cost manufacturing relying on LCB enabled, boon emerging economies like India, strategically strengthening their socio-economic status. present review showcases technical advances made exploiting route towards commercial realization with feedstock. It comprehensively discusses strategies developed area pretreatment, saccharification fermentation, bridging gap between lab-scale production. gives glimpse downstream processing SCB-derived LA, still nascent stage briefly talks about our perspective preferred choice scale-up "sugar industry" over other bio-based chemicals.
Язык: Английский
Процитировано
36ACS Sustainable Chemistry & Engineering, Год журнала: 2023, Номер 11(42), С. 15146 - 15170
Опубликована: Окт. 10, 2023
As the global demand for plastics continues to grow, plastic waste is accumulating at an alarming rate with negative effects on natural environment. The industrially compostable biopolymer poly(lactic acid) (PLA) therefore being adopted use in many applications, but degradation of this material slow under end-of-life conditions. This Perspective explores feasibility accelerating PLA through formation PLA-plant fiber composites. Topics include: (a) key properties PLA, plant-based fibers, and biocomposites; (b) mechanisms both hydrolytic biodegradation PLA-fiber composites; (c) composites aerobic anaerobic conditions, relevant compost, soil seawater (aerobic), landfills (anaerobic); (d) sustainability environmental impact composites, as evaluated using life cycle assessment. Additional modes, including thermal photodegradation, which are during processing use, have been omitted clarity, other types biocomposites. Multiple studies shown that addition some plant fibers (to form biocomposites) accelerates water transport hydrolysis, presenting a possible avenue improving these materials. To facilitate continued development materials enhanced biodegradability, we identify need implement testing protocols can distinguish between different mechanisms.
Язык: Английский
Процитировано
22International Journal of Biological Macromolecules, Год журнала: 2023, Номер 234, С. 123676 - 123676
Опубликована: Фев. 14, 2023
Язык: Английский
Процитировано
18Journal of Water Process Engineering, Год журнала: 2024, Номер 59, С. 105039 - 105039
Опубликована: Фев. 24, 2024
Язык: Английский
Процитировано
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