Lignin structural elucidation and compositions investigation of Camellia oleifera fruits collected from various locations
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[1] N. Tang,et al. Characterizations and application potentials of the hemicelluloses in waste oil-tea camellia fruit shells from Southern China , 2022, Industrial Crops and Products.
[2] Hua‐Min Liu,et al. Sequential aqueous acetone fractionation and characterization of Brauns native lignin separated from Chinese quince fruit. , 2022, International journal of biological macromolecules.
[3] R. Sun,et al. Insights into bamboo delignification with acidic deep eutectic solvents pretreatment for enhanced lignin fractionation and valorization , 2021 .
[4] Hua‐Min Liu,et al. Structural features, chemical composition, antioxidant activities of organosolv lignins extracted from black and white sesame capsules and stalks , 2021 .
[5] P. Deuss,et al. The effect of ball milling on birch, pine, reed, walnut shell enzymatic hydrolysis recalcitrance and the structure of the isolated residual enzyme lignin , 2021 .
[6] Yu-lan Liu,et al. Effect of drying pretreatment methods on structural features and antioxidant activities of Brauns native lignin extracted from Chinese quince fruit , 2021, Process Biochemistry.
[7] Haiyan Yang,et al. Revealing the structural characteristics of lignin macromolecules from perennial ryegrass during different integrated treatments. , 2021, International journal of biological macromolecules.
[8] Changwei Hu,et al. Reductive catalytic fractionation of lignin in birch sawdust to monophenolic compounds with high selectivity , 2020 .
[9] Yu-lan Liu,et al. Structural features and antioxidant activities of Chinese quince (Chaenomeles sinensis) fruits lignin during auto-catalyzed ethanol organosolv pretreatment. , 2020, International journal of biological macromolecules.
[10] Longsheng Chen,et al. Integration and Potential Application Ability of Culturable Functional Microorganism in Oil Tea Camellia , 2020, Indian Journal of Microbiology.
[11] Y. Ni,et al. All-Lignin-Based Hydrogel with Fast pH-Stimuli Responsiveness for Mechanical Switching and Actuation , 2020 .
[12] Jianxin Jiang,et al. Co-production of xylooligosaccharides and activated carbons from Camellia oleifera shell treated by the catalysis and activation of zinc chloride. , 2020, Bioresource technology.
[13] Qingzhe Jin,et al. Camellia oil authentication: A comparative analysis and recent analytical techniques developed for its assessment. A review , 2020 .
[14] J. Wen,et al. Structural Variations of Lignin Macromolecules from Early Growth Stages of Poplar Cell Walls , 2019, ACS Sustainable Chemistry & Engineering.
[15] Songlin Zuo,et al. Efficient Hydrogenation of Xylose and Hemicellulosic Hydrolysate to Xylitol over Ni-Re Bimetallic Nanoparticle Catalyst , 2019, Nanomaterials.
[16] J. Wen,et al. Structural elucidation of lignin macromolecule from abaca during alkaline hydrogen peroxide delignification. , 2019, International journal of biological macromolecules.
[17] R. Sun,et al. Insights into the Structural Changes and Potentials of Lignin from Bagasse during the Integrated Delignification Process , 2019, ACS Sustainable Chemistry & Engineering.
[18] J. Colodette,et al. Investigation of eucalypt and pine wood acid-soluble lignin by Py-GC-MS , 2019 .
[19] Robert C. Brown,et al. Improving Lignin Homogeneity and Functionality via Ethanolysis for Production of Antioxidants , 2019, ACS Sustainable Chemistry & Engineering.
[20] F. Vilaplana,et al. Differences in extractability under subcritical water reveal interconnected hemicellulose and lignin recalcitrance in birch hardwoods , 2018 .
[21] S. Arni. Extraction and isolation methods for lignin separation from sugarcane bagasse: A review , 2018 .
[22] K. Tamilarasan,et al. Optimal extraction, sequential fractionation and structural characterization of soda lignin , 2018, Research on Chemical Intermediates.
[23] Xiaochang C. Wang,et al. Camellia oleifera shell as an alternative feedstock for furfural production using a high surface acidity solid acid catalyst. , 2018, Bioresource technology.
[24] B. Wang,et al. Structural characteristics of lignin macromolecules from different Eucalyptus species , 2017 .
[25] A. Ragauskas,et al. Elucidating the Structural Changes to Populus Lignin during Consolidated Bioprocessing with Clostridium thermocellum , 2017 .
[26] R. Sun,et al. Structural Variation of Lignin and Lignin–Carbohydrate Complex in Eucalyptus grandis × E. urophylla during Its Growth Process , 2017 .
[27] Zhanying Zhang,et al. Biorefining fractionation of the Camellia oleifera Abel. hull into diverse bioproducts with a two-stage organosolv extraction , 2016 .
[28] J. Wen,et al. Structural elucidation of whole lignin from Eucalyptus based on preswelling and enzymatic hydrolysis , 2015 .
[29] J. Wen,et al. Quantitative structural characterization of the lignins from the stem and pith of bamboo (Phyllostachys pubescens) , 2013 .
[30] S. Yasuda,et al. Formation and chemical structures of acid-soluble lignin I: sulfuric acid treatment time and acid-soluble lignin content of hardwood , 2001, Journal of Wood Science.
[31] A. Björkman. Isolation of Lignin from Finely Divided Wood with Neutral Solvents , 1954, Nature.
[32] Hang Li,et al. Valorization of lignin into phenolic compounds via fast pyrolysis: Impact of lignin structure , 2022, Fuel.
[33] D. Montplaisir,et al. Characterization of different types of lignin and their potential use in green adhesives , 2022, Industrial Crops and Products.
[34] J. Wen,et al. Availability of four energy crops assessing by the enzymatic hydrolysis and structural features of lignin before and after hydrothermal treatment , 2018 .
[35] D. Argyropoulos,et al. An improved method for isolating lignin in high yield and purity , 2003 .
[36] E. Cowling,et al. Comparative Studies on Cellulolytic Enzyme Lignin and Milled Wood Lignin of Sweetgum and Spruce , 1975 .