PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Hydrothermal pretreatment of poplar (Populus trichocarpa) wood and its impact on chemical composition and enzymatic hydrolysis yield

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper focuses on the effect of liquid hot water pretreatment of fast-growing poplar wood in the context of bioethanol production. The milled Populus trichocarpa wood with a particle size of 0.43-1.02 mm was pretreated with liquid hot water method at temperatures range from 160ºC to 205ºC and then was subjected to enzymatic hydrolysis. The glucose and xylose content in the hydrolyzates were analyzed with high performance liquid chromatography. On the basis of results it was concluded, that increase of temperature in the hydrothermal pretreatment resulted in an increase of glucose and decrease of xylose content. However, increased temperature of the process led to inhibitor formation.
Rocznik
Strony
5--18
Opis fizyczny
Bibliogr. 43 poz., rys., tab.
Twórcy
  • Institute of Wood Sciences and Furniture, Warsaw University of Life Sciences, Warsaw, Poland
  • Institute of Wood Sciences and Furniture, Warsaw University of Life Sciences, Warsaw, Poland
  • Institute of Wood Sciences and Furniture, Warsaw University of Life Sciences, Warsaw, Poland
Bibliografia
  • Alvira P., Tomas-Pejo E., Ballesteros M., Negro M.J. [2010]: Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: A review. Bioresource Technology 101: 4851-4861
  • Antczak A., Marchwicka M., Szadkowski J., Drożdżek M., Gawron J., Radomski A., Zawadzki J. [2018]: Sugars yield obtained after acid and enzymatic hydrolysis of fast-growing poplar wood species. BioResources 13: 8629-8645
  • Antczak A., Radomski A., Zawadzki J. [2006]: Benzene substitution in wood analysis. Annals of Warsaw University of Life Sciences – SGGW, Forestry and Wood Technology 58: 15-19
  • Antczak A., Świerkosz R., Szeniawski M., Marchwicka M., Akus-Szylberg F., Przybysz P., Zawadzki J. [2019]: The comparison of acid and enzymatic hydrolysis of pulp obtained from poplar wood (Populus sp.) by the Kraft method. Drewno 62 [203]: 53-66
  • Antczak A., Ziętek K., Marchwicka M., Tylko B., Gawkowski A., Gawron J., Drożdżek M., Zawadzki J. [2016]: The sugars isolated from fast-growing poplar biomass (Populus sp.) as a raw material for production of bioethanol. Przemysł Chemiczny 95: 1770-1773
  • Branco R.H.R., Serafim L.S., Xavier A.M.R.B. [2018]: Second generation bioethanol production: on the use of pulp and paperindustry wastes as feedstock. Fermentation 5: 1-30
  • Brodeur G., Yau E., Badal K., Collier J., Ramachandran K., Ramakrishnan S. [2011]: Chemical and Physicochemical Pretreatment of Lignocellulosic Biomass: A Review. Enzyme Research 2011: 1-17
  • Fengel D., Wegener G. [1984]: Wood. Chemistry, ultrastructure, reactions. Walter de Gruyter, Berlin
  • Gonzalez-Garcia S., Moreira M., Feijoo G., Murphy R. [2012]: Comparative life cycle assessment of ethanol production from fast-growing wood crops (black locust, eucalyptus and poplar). Biomass & Bioenergy 39: 378-388
  • Imman S., Laosiripojana N., Champreda V. [2018] Effects of Liquid Hot Water Pretreatment on Enzymatic Hydrolysis and Physicochemical Changes of Corncobs. Applied Biochemistry and Biotechnology 184: 432-443
  • Jönsson L.J., Alriksson ӧ B., Nilvebrant N-O. [2013]: Bioconversion of lignocellulose: inhibitors and detoxification. Biotechnology for Biofuels 6: 16
  • Kačik F., Ďurkovič J., Kačikova D. [2012]: Chemical profiles of wood components of poplar clones for their energy utilization. Energies 5: 5243-5256
  • Kim D. [2018]: Physico-Chemical Conversion of Lignocellulose: Inhibitor Effects and Detoxification Strategies: A Mini Review. Molecules 23: 309
  • Kim S., Holtzapple M.T. [2006]: Effect of structural features on enzyme digestibility of corn stover. Bioresource Technology 97: 583-591
  • Kim J., Kim K.S., Lee J., Park S.M., Cho H., Park J.C., Kim J.S. [2011]: Two stage pretreatment of rice straw using aqueous ammonia and dilute acid. Bioresource Technology 102: 8992-8999
  • Krutul D. [2002]: Exercises in wood chemistry and selected issues in organic chemistry. WULS-SGGW, Warsaw
  • Krutul D., Antczak A., Radomski A., Drożdżek M., Kłosińska T., Zawadzki J. [2019]: The chemical composition of poplar wood in relation to the species and age of trees. Annals of Warsaw University of Life Sciences - SGGW Forestry and Wood Technology 107: 131-138
  • Kumar D., Murthy G.S. [2011]: Impact of pretreatment and downstream processing technologies on economics and energy in cellulosic ethanol production. Biotechnology for Biofuels 4: 27
  • Kupczyk A., Sikora M., Klepacka A. [2013]: Redukcja emisji CO2 a atrakcyjność sektorow biopaliw transportowych w Polsce na przykładzie bioetanolu (Reduction of CO2 emission and the attractiveness of the transport biofuels sectors in Poland on the example of bioethanol). In: Pająk K., Ziomek A., Zwierzchlewski S. (eds.), Ekonomia i zarządzanie energią a rozwoj gospodarczy (Economics and management of energy and economic development). Wydawnictwo Adam Marszałek, Toruń
  • Kurschner K., Hoffer A. [1929]: Ein neues Verfahren zur Bestimmung der Cellulose in Holzern und Zellstoffen. Tech. Chem. Papier und Zellstoff Fabr. 26: 125-129
  • Li X., Lu J., Zhao J., Qu Y. [2014]: Characteristics of corn stover pretreated with liquid hot water and fed – batch semi-simultaneous saccharification and fermentation for bioethanol production. PLoS One 9: e95455
  • Li Z., Yu Y., Sun J., Li D., Huang Y., Feng Y. [2016]: Effect of extractives on digestibility of cellulose in corn stover with liquid hot water pretreatment. BioResources 11: 54-70
  • Lu X., Zheng X., Li X., Zhao J. [2016]: Adsorption and mechanism of cellulase enzymes onto lignin isolated from corn stover pretreated with liquid hot water. Biotechnology for Biofuels 9: 1
  • Ma X.J., Cao S.L., Lin L., Luo XL., Hu H.C., Chen L.H., Huang L.L, [2013]: Hydrothermal Pretreatment of Bamboo and Cellulose Degradation. Bioresource Technology 148: 408-413
  • Martin-Sampedro R., Filpponen I., Hoeger I.C., Zhu J.Y., Laine J., Rojas O.J. [2012]: Rapid and complete enzyme hydrolysis of lignocellulosic nanofibres. ACS Macro Letters 1: 1321-1325
  • Mota C.J.A., Pinto B.P., de Lima A.L. [2017]: Biomass and Biofuels. In: Glycerol. Springer, Chem
  • Mosier N., Hendrickson R., Ho N., Sedlak M., Ladisch M.R. [2005]: Optimization of pH controlled liquid hot water pretreatment of corn stover. Bioresour. Technol. 96: 1986--1993
  • Piotrowski K., Wiltowski T. [2004]: Biomasa-kłopotliwe pozostałości czy strategiczne rezerwy czystej energii? Czysta Energia 12: 16-17
  • Rahikainen J., Martin-Sampedro R., Heikkinen H., Rovio S., Marjamaa K., Tamminen T., Rojas O.J. [2013]: Inhibitory effect of lignin during cellulose bioconversion: The effect of lignin chemistry on non-productive enzyme adsorption. Bioresource Technology 133: 270-277
  • Sannigrahi P., Miller S.J., Ragauskas A.J. [2010]: Effects of organosolv pretreatment and enzymatic hydrolysis on cellulose structure and crystallinity in Loblolly pine. Carbohydrate Research 345: 965-970
  • Serapiglia MJ., Humiston M.C., Xu H., Hogsett D.A., de Orduna R.M., Stipanovic A.J., [2013]: Enzymatic saccharification of shrub willow genotypes with differing biomass composition for biofuel production.. Frontiers in Plant Science 4: 57
  • Sinitsyn A.P., Gusakov A.V., Vlasenko E.Y. [1991]: Effect of structural and physicochemical features of cellulosic substrates on the efficiency of enzymatic hydrolysis. Applied Biochemistry and Biotechnology 30: 43-59
  • Sluiter, A., Hames, B., Ruiz, R., Scarlata, C., Sluiter, J., Templeton, D., Crocker, D. [2012]: Determination of structural carbohydrates and lignin in biomass (NREL/TP-510-42618). National Renewable Energy Laboratory, Golden, CO
  • Sun Y., Cheng J. [2002]: Hydrolysis of lignocellulosic materials for ethanol production: a review. Bioresour. Technol. 83: 1-11
  • Sun S., Sun S., Cao X., Sun R. [2016]: The role of pretreatment in improving the enzymatic hydrolysis of lignocellulosic materials. Bioresource Technology 199: 49-58
  • Szadkowski J. [2019]: Changes of porous structure and chemical composition of poplar wood (Populus sp.) after physicochemical treatment. Praca doktorska, Szkoła Głowna Gospodarstwa Wiejskiego, Warszawa
  • Świątek M., Lewandowska M., Bednarski W. [2011]: Znaczenie doboru metody wstępnej obrobki substratow lignocelulozowych z uwzględnieniem wydajności produkcji bioetanolu (The importance of selecting the method of pretreatment of lignocellulosic substrates considering the efficiency of bioethanol production). Postępy Nauk Rolniczych 1: 109-119
  • Trajano H.L., Pattathil S., Tomkins B.A., Tschaplinski T.J., Hahn M.G., Van Berkel G.J., Wzman C.E. [2015]: Xylan hydrolysis in Populus trichocarpa x P. deltoides and model substrates during hydrothermal pretreatment. Bioresource Technology 179: 202-210
  • Verardi A., De Bari I., Ricca E., Calabro V. [2012]: Hydrolysis of lignocellulosic biomass: current status of processes and technologies and future perspectives. In: Lima M.A.P. (ed.), Bioethanol. Intech, Rijeka
  • Wang M., Wu M., Huo H. [2007]: Life-cycle energy and greenhouse gas emission impacts of different corn ethanol plant types. Environmental Research Letters 2: 1-13
  • Yang B., Dai Z., Ding S.Y., Wyman C. E. [2011]. Enzymatic hydrolysis of cellulosic biomass. Biofuels 2: 421-450
  • Yavorov N., Petrin S., Valchev I., Nenkova S. [2014]: Potential of fast growing poplar, willow and paulownia for bioenergy production. Bulgarian Chemical Communications 47 (special issue A): 5-9
  • List of standards
  • PN-92 P-50092:1992 Surowce dla przemysłu papierniczego. Drewno. Analiza chemiczna (Raw materials for the paper industry. Pulpwood. Chemical analysis)
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-008a8ff6-85f7-4176-8b37-f9501534720e
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.