Combinatorial application of ammonium carbonate and sulphuric acid pretreatment to achieve enhanced sugar yield from pine needle biomass for potential biofuel–ethanol production

Surbhi Vaid , Neha Bhat , Parushi Nargotra , Bijender Kumar Bajaj

Energy, Ecology and Environment ›› 2018, Vol. 3 ›› Issue (2) : 126 -135.

PDF
Energy, Ecology and Environment ›› 2018, Vol. 3 ›› Issue (2) : 126 -135. DOI: 10.1007/s40974-018-0083-1
Original Article

Combinatorial application of ammonium carbonate and sulphuric acid pretreatment to achieve enhanced sugar yield from pine needle biomass for potential biofuel–ethanol production

Author information +
History +
PDF

Abstract

Lignocellulosic biomass (LB) despite its huge potential as a renewable bioenergy resource faces bottlenecks due to its recalcitrance and lack of appropriate pretreatment approaches. The current study evaluates the combinatorial application of alkali and acid pretreatment of pine needle biomass (PNB), for achieving high sugar release upon enzymatic saccharification. Pine needle accumulation poses a big threat to the forest soil fertility and overall ecosystem and environment. However, pine needle waste can be valorized after appropriate pretreatment and enzymatic saccharification for production of renewable energy, i.e. biofuel–ethanol. In combinatorial pretreatment strategy, first PNB was subjected to ammonium carbonate pretreatment, and parameters like ammonium carbonate concentration, incubation time and pretreatment temperature were optimized using design of experiment (DoE) approach. The relative influence of parameters on efficacy of pretreatment was established individually and in interactive terms. Based on DoE, sugar yield of 7.56 mg/g of PNB was obtained. Furthermore, DoE-based pretreated PNB was subjected to sulphuric acid pretreatment, followed by enzymatic saccharification. The sugar released during various steps was pooled (8.19 g/100 g), concentrated and subjected to ethanol fermentation with dual yeast cultures using Saccharomyces cerevisiae and Pichia stipitis. An ethanol yield of 8.8%, v/v (6.94% w/v), was obtained. This represents the process efficiency of 19.34% for bioethanol production from PNB.

Keywords

Pine needle biomass / Ammonium carbonate–sulphuric acid pretreatment / Enzymatic saccharification / Fermentation / Bioethanol

Cite this article

Download citation ▾
Surbhi Vaid, Neha Bhat, Parushi Nargotra, Bijender Kumar Bajaj. Combinatorial application of ammonium carbonate and sulphuric acid pretreatment to achieve enhanced sugar yield from pine needle biomass for potential biofuel–ethanol production. Energy, Ecology and Environment, 2018, 3(2): 126-135 DOI:10.1007/s40974-018-0083-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Alvira P, Tomas-Pejo E, Ballesteros M, Negro MJ. Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: a review. Bioresour Technol, 2010, 101: 4851-4861

[2]

Choi WI, Park JY, Lee JP, Oh YK, Park YC, Kim JS, Park JM, Kim CH, Lee JS. Optimization of NaOH-catalyzed steam pretreatment of empty fruit bunch. Biotechnol Biofuel, 2013, 6: 170

[3]

de Souza ROMA, Mirandaa LSM, Luque R. Bio(chemo)technological strategies for biomass conversion into bioethanol and key carboxylic acids. Green Chem, 2014, 16: 2386

[4]

Gao W, Tabil LG, Dumonceaux T, Ríos SE, Zhao R. Optimization of biological pretreatment to enhance the quality of wheat straw pellets. Biomass Bioenergy, 2017, 97: 77-89

[5]

Ghosh MK, Ghosh UK. Utilization of pine needles as bed material in solid state fermentation for production of lactic acid by lactobacillus strains. BioResources, 2011, 6: 1556-1575

[6]

Guo X, Cavka A, Jonsson LJ, Hong F. Comparison of methods for detoxification of spruce hydrolysate for bacterial cellulose production. Microb Cell Fact, 2013, 12: 1

[7]

Gupta P, Samant K, Sahu A. Isolation of cellulose-degrading bacteria and determination of their cellulolytic potential. Int J Microbiol, 2012

[8]

He YC, Liu F, Gong L, Lu T, Ding Y, Zhang Dan-Ping, Qing Q, Zhang Y. Improving enzymatic hydrolysis of corn stover pretreated by ethylene glycol-perchloric acid-water mixture. Appl Biochem Biotechnol, 2015, 175: 1306-1317

[9]

Hou Q, Ju M, Li W, Liu L, Chen Y, Yang Q. Pretreatment of lignocellulosic biomass with ionic liquids and ionic liquid-based solvent systems. Molecules, 2017, 22: 490

[10]

Jin S, Zhang G, Zhang P, Fan S, Li F. High-pressure homogenization pretreatment of four different lignocellulosic biomass for enhancing enzymatic digestibility. Bioresour Technol, 2015, 181: 270-274

[11]

Jonsson LJ, Martin C. Pretreatment of lignocellulose: formation of inhibitory by-products and strategies for minimizing their effects. Bioresour Technol, 2016, 199: 103-112

[12]

Jonsson LJ, Alriksson B, Nilvebrant NO. Bioconversion of lignocellulose: inhibitors and detoxification. Biotechnol Biofuel, 2013, 6: 1

[13]

Kang Q, Appels L, Tan T, Dewil R. Bioethanol from lignocellulosic biomass: current findings determine research priorities. Sci World J, 2014

[14]

Karcher MA, Iqbal Y, Lewandowski T. Comparing the performance of Miscanthus giganteus and wheat straw biomass in sulfuric acid based pretreatment. Bioresour Technol, 2015, 180: 360-364

[15]

Kim I, Lee B, Song D, Han JI. Effects of ammonium carbonate pretreatment on the enzymatic digestibility and structural features of rice straw. Bioresour Technol, 2014, 166: 353-357

[16]

Kim JS, Lee YY, Kim TH. A review on alkaline pretreatment technology for bioconversion of lignocellulosic biomass. Bioresour Technol, 2016, 199: 42-48

[17]

Kumar R, Tabatabaei M, Karimi K, Sárvári Horváth I. Recent updates on lignocellulosic biomass derived ethanol—a review. Biofuel Res J, 2016, 9: 347-356

[18]

Miller GL. Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Chem, 1959, 31: 426-428

[19]

Mohan M, Banerjee T, Goud VV. Hydrolysis of bamboo biomass by subcritical water treatment. Bioresour Technol, 2015, 191: 244-252

[20]

Nanda S, Dalai AK, Kozinski JA. Butanol and ethanol production from lignocellulosic feedstock: biomass pretreatment and bioconversion. Energy Sci Eng, 2014, 2: 138-148

[21]

Nargotra P, Vaid S, Bajaj BK. Cellulase production from Bacillus subtilis SV1 and its application potential for saccharification of ionic liquid pretreated pine needle biomass under one pot consolidated bioprocess. Fermentation, 2016, 2: 19

[22]

Novy V, Longus K, Nidetzky B. From wheat straw to bioethanol: integrative analysis of a separate hydrolysis and co-fermentation process with implemented enzyme production. Biotechnol Biofuel, 2015, 8: 46

[23]

Oladi S, Aita GM. Optimization of liquid ammonia pretreatment variables for maximum enzymatic hydrolysis yield of energy cane bagasse. Ind Crops Product, 2017, 103: 122-132

[24]

Pandey AK, Negi S. Impact of surfactant assisted acid and alkali pretreatment on lignocellulosic structure of pine foliage and optimization of its saccharification parameters using response surface methodology. Bioresour Technol, 2015, 192: 115-125

[25]

Phitsuwan P, Permsriburasuk C, Waeonkul R, Pason P, Tachaapaikoon C, Ratankhanokchai K. Evaluation of fuel ethanol production from aqueous ammonia-treated rice straw via simultaneous saccharification and fermentation. Biomass Bioenergy, 2016, 150: 150-157

[26]

Rabemanolontsoa H, Saka S. Various pretreatments of lignocellulosics. Bioresour Technol, 2016, 199: 83-91

[27]

Sharma M, Bajaj BK. Optimization of bioprocess variables for production of a thermostable and wide range pH stable carboxymethyl cellulase from Bacillus subtilis MS 54 under solid state fermentation. Environ Prog Sustain Energy, 2017

[28]

Sindhu R, Binod P, Mathew AK, Abraham A, Gnansounou E, Ummalyma SB, Thomas L, Pandey A. Development of a novel ultrasound-assisted alkali pretreatment strategy for the production of bioethanol and xylanases from chili post harvest residue. Bioresour Technol, 2017

[29]

Singh S, Anu, Anu Vaid S, Singh P, Bajaj BK. Physicochemical pretreatment of pine needle biomass by design of experiments approach for efficient enzymatic saccharification. J Mater Environ Sci, 2016, 7: 2034-2041

[30]

Teramura H, Sasaki K, Oshima T, Matsuda F, Okamoto M, Shirai T, Kawaguchi H, Ogino C, Hirano K, Sazuka T, Kitano H. Organosolv pretreatment of sorghum bagasse using a low concentration of hydrophobic solvents such as 1-butanol or 1-pentanol. Biotechnol Biofuel, 2016, 9: 27

[31]

Tian D, Chandra RP, Lee JS, Lu C, Saddler JN. A comparison of various lignin-extraction methods to enhance the accessibility and ease of enzymatic hydrolysis of the cellulosic component of steam-pretreated poplar. Biotechnol Biofuel, 2017, 10: 157

[32]

Timung R, Mohan M, Chilukoti B, Sasmal S, Banerjee T, Goud VV. Optimization of dilute acid and hot water pretreatment of different lignocellulosic biomass: a comparative study. Biomass Bioenerg, 2015, 81: 9-18

[33]

Vaid S, Bajaj BK. Production of ionic liquid tolerant cellulase from Bacillus subtilis G2 using agroindustrial residues with application potential for saccharification of biomass under one pot consolidated bioprocess. Waste Biomass Valor, 2017, 8: 949-964

[34]

Vaid S, Nargotra P, Bajaj BK. Consolidated bioprocessing for biofuel-ethanol production from pine needle biomass. Environ Prog Sustain Energy, 2017

[35]

Vats S, Maurya DP, Jain A, Mall V, Negi S. Mathematical model-based optimization of physico-enzymatic hydrolysis of Pinus roxburghii needles for the production of reducing sugars. Indian J Exp Biol, 2013, 51: 944-953

[36]

Vogel KP, Dien BS, Jung HG, Casler MD, Masterson SD, Mitchell RB. Quantifying actual and theoretical ethanol yields for switchgrass strains using NIRS analyses. Bioenergy Res, 2011, 4: 96-110

[37]

Wi SG, Cho EJ, Lee DS, Lee SJ, Lee YJ, Bae HJ. Lignocellulose conversion for biofuel: a new pretreatment greatly improves downstream biocatalytic hydrolysis of various lignocellulosic materials. Biotechnol Biofuel, 2015, 8: 228

[38]

Yadav SK, Naseeruddin S, Prashanthi SG, Sateesh L, Rao VL. Bioethanol fermentation of concentrated rice straw hydrolysate using co-culture of Saccharomyces cerevisiae and Pichia stipitis. Bioresour Technol, 2012, 102: 6473-6478

Funding

Institute of Advanced Study, Durham University, UK for providing COFUND International Senior Research Fellowship for ‘Research Stay’ at Department of Biosciences, Durham University, Durham UK;

Department of Science and Technology (Govt. of India) Research Project(SR/SO/BB-66/2007)

Commonwealth Scholarship Commission, UK, for providing Commonwealth Fellowship (INCF-2013-45) for ‘Research Stay’ at Institute of Biological, Environmental and Rural Sciences (IBERS), Aberystwyth University, Aberystwyth, UK(INCF-2013-45)

AI Summary AI Mindmap
PDF

127

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/