[en] Microwave-assisted hydrolysis has been widely studied for cellulose fiber isolation, but the influence of reaction conditions and the microwave non-thermal effect are not well clarified. In this study, a series of well-designed experiments were carried out to measure the effects of reaction conditions including temperature, duration and alkali concentration. Compared to the other parameters, temperature was more relevant to the cellulose content in fiber. It could reach the maximum purity of 90.66 % when the temperature was up to 140 °C. Moreover, the existence of non-thermal effect of microwave has been confirmed through extensive determination and characterization of the fibers obtained from parallel controlled experiments conducted with or without microwave assistance. Approximately 50 %–75 % reduction in reaction time or 67 % of that in chemical costs would be realized under microwave with respect to traditional heating hydrolysis. Therefore, this work provides both deep insight and efficiency strategy into the microwave-assisted cellulose isolation.
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Bibliography
Aguilar-Reynosa, A., Romaní, A., Rodríguez-Jasso, R.M., Aguilar, C.N., Garrote, G., Ruiz, H.A., Microwave heating processing as alternative of pretreatment in second-generation biorefinery: An overview. Energy Conversion and Management 136 (2017), 50–65.
Ahirwar, R., Tanwar, S., Bora, U., Nahar, P., Microwave non-thermal effect reduces ELISA timing to less than 5 minutes. RSC Advances 6:25 (2016), 20850–20857.
Bayazit, M.K., Yue, J., Cao, E., Gavriilidis, A., Tang, J., Controllable synthesis of gold nanoparticles in aqueous solution by microwave assisted flow chemistry. ACS Sustainable Chemistry & Engineering 4:12 (2016), 6435–6442.
Bhattacharjee, M.K., Delsol, J.K., Does microwave sterilization of growth media involve any non-thermal effect?. Journal of Microbiological Methods 96 (2014), 70–72.
Bian, H., Gao, Y., Luo, J., Jiao, L., Wu, W., Fang, G., et al. Lignocellulosic nanofibrils produced using wheat straw and their pulping solid residue: From agricultural waste to cellulose nanomaterials. Waste Management 91 (2019), 1–8.
Blakeney, A.B., Harris, P.J., Henry, R.J., Stone, B.A., A simple and rapid preparation of alditol acetates for monosaccharide analysis. Carbohydrate Research 113:2 (1983), 291–299.
Chen, Z., Wan, C., Ultrafast fractionation of lignocellulosic biomass by microwave-assisted deep eutectic solvent pretreatment. Bioresource Technology 250 (2018), 532–537.
Cheng, S.F., Nor, L.M., Chuah, C.H., Microwave pretreatment: A clean and dry method for palm oil production. Industrial Crops and Products 34:1 (2011), 967–971.
Cherian, B.M., Leão, A.L., De Souza, S.F., Thomas, S., Pothan, L.A., Kottaisamy, M., Isolation of nanocellulose from pineapple leaf fibres by steam explosion. Carbohydrate Polymers 81:3 (2010), 720–725.
Cuevas, C.L., Hernández, B.E., Use of microwaves in the pharmaceutical industry. Revista Mexicana de Ciencias Farmaceuticas 42 (2011), 6–25.
Dávila, I., Remón, J., Gullón, P., Labidi, J., Budarin, V., Production and characterization of lignin and cellulose fractions obtained from pretreated vine shoots by microwave assisted alkali treatment. Bioresource Technology, 289, 2019, 121726.
De Aguiar, J., Bondancia, T.J., Claro, P.I.C., Mattoso, L.H.C., Farinas, C.S., Marconcini, J.M., Enzymatic deconstruction of sugarcane bagasse and straw to obtain cellulose nanomaterials. ACS Sustainable Chemistry & Engineering 8:5 (2020), 2287–2299 2020.
Hatfield, R.D., Jung, H.J.G., Ralph, J., Buxton, D.R., Weimer, P.J., A comparison of the insoluble residues produced by the Klason lignin and acid detergent lignin procedures. Journal of the Science of Food and Agriculture 65:1 (1994), 51–58.
Hesas, R.H., Daud, W.M.A.W., Sahu, J.N., Arami-Niya, A., The effects of a microwave heating method on the production of activated carbon from agricultural waste: A review. Journal of Analytical and Applied Pyrolysis 100 (2013), 1–11.
Hinrikus, H., Lass, J., Karai, D., Pilt, K., Bachmann, M., Microwave effect on diffusion: A possible mechanism for non-thermal effect. Electromagnetic Biology and Medicine 34:4 (2015), 327–333.
Huang, Y.F., Chiueh, P.T., Kuan, W.H., Lo, S.L., Effects of lignocellulosic composition and microwave power level on the gaseous product of microwave pyrolysis. Energy 89 (2015), 974–981.
Kappe, C.O., Pieber, B., Dallinger, D., Microwave effects in organic synthesis: myth or reality?. Angewandte Chemie International Edition 52:4 (2013), 1088–1094.
Karunanithy, C., Muthukumarappan, K., Gibbons, W.R., Sequential extrusionmicrowave pretreatment of switchgrass and big bluestem. Bioresource Technology 153 (2014), 393–398.
Kaushik, A., Singh, M., Isolation and characterization of cellulose nanofibrils from wheat straw using steam explosion coupled with high shear homogenization. Carbohydrate Research 346:1 (2011), 76–85.
Khandanlou, R., Ngoh, G.C., Chong, W.T., Feasibility study and structural analysis of cellulose isolated from rice husk: Microwave irradiation, optimization, and treatment process scheme. BioResources 11:3 (2016), 5751–5766.
Kondo, T., Mizuno, K., Kato, T., Some characteristics of forage plant lignin. Japan Agricultural Research Quarterly 21:1 (1987), 47–52.
Liu, Q., Lu, Y., Aguedo, M., Jacquet, N., Ouyang, C., He, W., et al. Isolation of high-purity cellulose nanofibers from wheat straw through the combined environmentally friendly methods of steam explosion, microwave-assisted hydrolysis, and microfluidization. ACS Sustainable Chemistry & Engineering 5:7 (2017), 6183–6191.
Liu, Y., Sun, B., Zheng, X., Yu, L., Li, J., Integrated microwave and alkaline treatment for the separation between hemicelluloses and cellulose from cellulosic fibers. Bioresource Technology 247 (2018), 859–863.
Lohan, S.K., Jat, H.S., Yadav, A.K., Sidhu, H.S., Jat, M.L., Choudhary, M., et al. Burning issues of paddy residue management in north-west states of India. Renewable and Sustainable Energy Reviews 81 (2018), 693–706.
Mandal, A., Chakrabarty, D., Isolation of nanocellulose from waste sugarcane bagasse (SCB) and its characterization. Carbohydrate Polymers 86:3 (2011), 1291–1299.
Mikulski, D., Kłosowski, G., Menka, A., Koim-Puchowska, B., Microwave-assisted pretreatment of maize distillery stillage with the use of dilute sulfuric acid in the production of cellulosic ethanol. Bioresource Technology 278 (2019), 318–328.
Mosier, N., Wyman, C., Dale, B., Elander, R., Lee, Y.Y., Holtzapple, M., et al. Features of promising technologies for pretreatment of lignocellulosic biomass. Bioresource Technology 96:6 (2005), 673–686.
Moura, H.O., Campos, L.M., da Silva, V.L., de Andrade, J.C., de Assumpção, S.M., Pontes, L.A., et al. Investigating acid/peroxide-alkali pretreatment of sugarcane bagasse to isolate high accessibility cellulose applied in acetylation reactions. Cellulose 25:10 (2018), 5669–5685.
Palav, T., Seetharaman, K., Impact of microwave heating on the physicochemical properties of a starch–water model system. Carbohydrate Polymers 67 (2007), 596–604.
Sánchez, R., Espinosa, E., Domínguez-Robles, J., Loaiza, J.M., Rodríguez, A., Isolation and characterization of lignocellulose nanofibers from different wheat straw pulps. International Journal of Biological Macromolecules 92 (2016), 1025–1033.
Sèbe, G., Ham-Pichavant, F., Ibarboure, E., Koffi, A.L.C., Tingaut, P., Supramolecular structure characterization of cellulose II nanowhiskers produced by acid hydrolysis of cellulose I substrates. Biomacromolecules 13:2 (2012), 570–578.
Segal, L., Creely, J.J., Martin, A.E. Jr., Conrad, C.M., An empirical method for estimating the degree of crystallinity of native cellulose using the X-ray diffractometer. Textile Research Journal 29:10 (1959), 786–794.
Singh, S., Gaikwad, K.K., Park, S.I., Lee, Y.S., Microwave-assisted step reduced extraction of seaweed (Gelidiella aceroso) cellulose nanocrystals. International Journal of Biological Macromolecules 99 (2017), 506–510.
Soest, P.V., Wine, R.H., Use of detergents in the analysis of fibrous feeds. IV. Determination of plant cell-wall constituents. Journal of the Association of Official Analytical Chemists 50:1 (1967), 50–55.
Szymańska-Chargot, M., Chylińska, M., Gdula, K., Kozioł, A., Zdunek, A., Isolation and characterization of cellulose from different fruit and vegetable pomaces. Polymers, 9(10), 2017, 495.
Tao, P., Zhang, Y., Wu, Z., Liao, X., Nie, S., Enzymatic pretreatment for cellulose nanofibrils isolation from bagasse pulp: Transition of cellulose crystal structure. Carbohydrate Polymers 214 (2019), 1–7.
Tappi, T., 211 om-02; Ash in wood, pulp, paper and paperboard: Combustion at 525◦ C. TAPPI Test Methods 2005 (2004), 3–6.
Van Soest, P.J., Use of detergents in the analysis of fibrous feeds. 2. A rapid method for the determination of fiber and lignin. Journal of the Association of Official Agricultural Chemists 46 (1963), 829–835.
Xiao, S., Zhang, D., Pan, D., Zhu, W., Liu, P., Cai, Y., et al. A chloroplast structured photocatalyst enabled by microwave synthesis. Nature Communications 10:1 (2019), 1–10.
Xie, Z., Yang, J., Huang, X., Huang, Y., Microwave processing and properties of ceramics with different dielectric loss. Journal of the European Ceramic Society 19:3 (1999), 381–387.
Yu, X., Zhao, Z., Sun, D., Ren, N., Yu, J., Yang, R., et al. Microwave-assisted hydrothermal synthesis of Sn3O4 nanosheet/rGO planar heterostructure for efficient photocatalytic hydrogen generation. Applied Catalysis B: Environmental 227 (2018), 470–476.
Yue, Y., Han, J., Han, G., Zhang, Q., French, A.D., Wu, Q., Characterization of cellulose I/II hybrid fibers isolated from energycane bagasse during the delignification process: Morphology, crystallinity and percentage estimation. Carbohydrate Polymers 133 (2015), 438–447.
Zhai, C., Teng, N., Pan, B., Chen, J., Liu, F., Zhu, J., et al. Revealing the importance of non-thermal effect to strengthen hydrolysis of cellulose by synchronous cooling assisted microwave driving. Carbohydrate Polymers 197 (2018), 414–421.
Zhou, L., Budarin, V., Fan, J., Sloan, R., Macquarrie, D., Efficient method of lignin isolation using microwave-assisted acidolysis and characterization of the residual lignin. ACS Sustainable Chemistry & Engineering 5:5 (2017), 3768–3774.
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