2024年 04期

Research Progresses on Hydrogen Production by Anaerobic Fermentation of Algae


摘要(Abstract):

针对全球藻类日益增多以及不可再生能源短缺的现状,综述藻类的资源化利用及生物制氢技术,包括预处理方法以及发酵制氢影响因素等,目前研究成果显示:不同预处理条件下藻类厌氧发酵产氢结果不同,综合运用多种预处理方法提高藻类水解效率可以获得到更高的产氢量;发酵过程影响因素的优化有利于进一步提高藻类厌氧发酵产氢的效率。指出藻类作为一种重要的厌氧发酵原料,未来的研究重点应根据当前藻类厌氧发酵产氢技术存在的主要问题,采取提高制氢效率的策略。

关键词(KeyWords):生物制氢;厌氧发酵;藻类;氢化酶

基金项目(Foundation): 国家自然科学基金项目(52070089)

作者(Author): 刘媛媛,李素月,牧辉,杨曦,赵伟,张永芳

DOI: 10.13349/j.cnki.jdxbn.20240412.001

参考文献(References):

[1] GERKEN H G,DONOHOE B,KNOSHAUG E P.Enzymatic cell wall degradation of Chlorella vulgaris and other microalgae for biofuels production[J].Planta,2013,237(1):239.

[2] 杨丰科,王兴富.藻类生物燃料未来生物能源的多样性[J].化学与生物工程,2013,30(10):10001.

[3] ULLAH K,AHMAD M,SOFIA,et al.Assessing the potential of algal biomass opportunities for bioenergy industry:a review[J].Fuel,2015,143:414.

[4] TOMMASI T,RUGGERI B,SANFILIPPO S.Energy valorisation of residues of dark anaerobic production of hydrogen[J].Journal of Cleaner Production,2012,34:91.

[5] MA H X,SU H J.Effect of temperature on the fermentation of starch by two high efficient H2 producers[J].Renewable Energy,2019,138:964.

[6] ZHANG J S,LI W L,YANG J Y,et al.Cobalt ferrate nanoparticles improved dark fermentation for hydrogen evolution[J].Journal of Cleaner Production,2021,316:128275.

[7] URBANIEC K,FRIEDL A,HUISINGH D,et al.Hydrogen for a sustainable global economy[J].Journal of Cleaner Production,2010,18(Suppl 1):S1.

[8] WANG J L,YIN Y A.Fermentative hydrogen production using pretreated microalgal biomass as feedstock[J].Microbial Cell Factories,2018,92:284.

[9] KUMAR M D,KAVITHA S,TYAGI V K,et al.Macroalgae-derived biohydrogen production:biorefinery and circular bioeconomy[J].Biomass Conversion and Biorefinery,2022,12(3):769.

[10] RODRIGUEZ C,ALASWAD A,MOONEY J,et al.Pre-treatment techniques used for anaerobic digestion of algae[J].Fuel Processing Technology,2015,138:765.

[11] ORTIGUEIRA J,ALVES L,GOUVEIA L,et al.Third generation biohydrogen production by Clostridium butyricum and adapted mixed cultures from Scenedesmus obliquus microalga biomass[J].Fuel,2015,153:128.

[12] THOMPSON T M,YOUNG B R,BAROUTIAN S.Advances in the pretreatment of brown macroalgae for biogas production[J].Fuel Processing Technology,2019,195:106.

[13] BATISTA A P,MOURA P,MARQUES P A S S,et al.Scenedesmus obliquus as feedstock for biohydrogen production by Enterobacter aerogenes and Clostridium butyricum[J].Fuel,2014,117:537.

[14] UMA RANI R,ADISH KUMAR S,KALIAPPAN S,et al.Impacts of microwave pretreatments on the semi-continuous anaerobic digestion of dairy waste activated sludge[J].Waste Management,2013,33(5):1119.

[15] PARK K Y,KWEON J,CHANTRASAKDAKUL P,et al.Anaerobic digestion of microalgal biomass with ultrasonic disintegration[J].International Biodeterioration & Biodegradation,2013,85:598.

[16] PASSOS F,CARRETERO J,FERRER I.Comparing pretreatment methods for improving microalgae anaerobic digestion:thermal,hydrothermal,microwave and ultrasound[J].Chemical Engineering Journal,2015,279:667.

[17] ZHOU M,TIAN X J.Development of different pretreatments and related technologies for efficient biomass conversion of lignocellulose[J].International Journal of Biological Macromolecules,2022,202:256.

[18] HOANG A T,NIZETIC S,ONG H C,et al.Insight into the recent advances of microwave pretreatment technologies for the conversion of lignocellulosic biomass into sustainable biofuel[J].Chemosphere,2021,281:130878.

[19] LIU C H,CHANG C Y,CHENG C L,et al.Fermentative hydrogen production by Clostridium butyricum CGS5 using carbohydrate-rich microalgal biomass as feedstock[J].International Journal of Hydrogen Energy,2012,37(20):15458.

[20] CAI J L,CHEN M L,WANG G C,et al.Fermentative hydrogen and polyhydroxybutyrate production from pretreated cyanobacterial blooms[J].Algal Research,2015,12:295.

[21] YIN Y A,WANG J L.Hydrogen production and energy recovery from macroalgae Saccharina japonica by different pretreatment methods[J].Renewable Energy,2019,141:1.

[22] KIM D H,KIM S H,SHIN H S.Sodium inhibition of fermentative hydrogen production[J].International Journal of Hydrogen Energy,2009,34(8):3295.

[23] ROY S,KUMAR K,GHOSH S,et al.Thermophilic biohydrogen production using pre-treated algal biomass as substrate[J].Biomass and Bioenergy,2014,61:157.

[24] BARATI B,ZAFAR F F,RUPANI P F,et al.Bacterial pretreatment of microalgae and the potential of novel nature hydrolytic sources[J].Environmental Technology & Innovation,2021,21:101362.

[25] TAPIA-TUSSELL R,AVILA-ARIAS J,MALDONADO J D,et al.Biological pretreatment of Mexican Caribbean macroalgae consortiums using Bm-2 strain (Trametes hirsuta) and its enzymatic broth to improve biomethane potential [J].Energies,2018,11(3):494.

[26] YUN Y M,KIM D H,OH Y K,et al.Application of a novel enzymatic pretreatment using crude hydrolytic extracellular enzyme solution to microalgal biomass for dark fermentative hydrogen production[J].Bioresource Technology,2014,159:365.

[27] WIECZOREK N,KUCUKER M A,KUCHTA K.Fermentative hydrogen and methane production from microalgal biomass (Chlorella vulgaris) in a two-stage combined process[J].Applied Energy,2014,132:108.

[28] BEHERA S,ARORA R,NANDHAGOPAL N,et al.Importance of chemical pretreatment for bioconversion of lignocellulosic biomass[J].Renewable and Sustainable Energy Reviews,2014,36:91.

[29] KASHYAP M,KIRAN B.Milking microalgae in conjugation with nano-biorefinery approach utilizing wastewater[J].Journal of Environmental Management,2021,21:112864.

[30] ROY S,KUMAR K,GHOSH S,et al.Thermophilic biohydrogen production using pre-treated algal biomass as substrate[J].Biomass and Bioenergy,2014,61:157.

[31] YANG Z M,GUO R B,XU X H,et al.Enhanced hydrogen production from lipid-extracted microalgal biomass residues through pretreatment[J].International Journal of Hydrogen Energy,2010,35(18):9618.

[32] WANG J L,YIN Y A.Fermentative hydrogen production using various biomass-based materials as feedstock[J].Renewable and Sustainable Energy Reviews,2018,92:284.

[33] GERKEN H G,DONOHOE B,KNOSHAUG E P.Enzymatic cell wall degradation of Chlorella vulgaris and other microalgae for biofuels production[J].Planta,2013,237(1):239.

[34] FU C C,HUNG T C,CHEN J Y,et al.Hydrolysis of microalgae cell walls for production of reducing sugar and lipid extraction[J].Bioresour Technology,2010,101(22):8750.

[35] CARVER S M,HULATT C J,THOMAS D N,et al.Thermophilic,anaerobic co-digestion of microalgal biomass and cellulose for H2 production[J].Biodegradation,2011,22(4):805.

[36] CHENG J,ZHANG M H,SONG W L,et al.Cogeneration of hydrogen and methane from Arthrospira maxima biomass with bacteria domestication and enzymatic hydrolysis[J].International Journal of Hydrogen Energy,2011,36(2):1474.

[37] YOKOYAMA H,OHMORI H,WAKI M,et al.Continuous hydrogen production from glucose by using extreme thermophilic anaerobic microflora[J].Journal of Bioscience and Bioengineering,2009,107(1):64.

[38] PARK J I,LEE J,SIM S J,et al.Production of hydrogen from marine macro-algae biomass using anaerobic sewage sludge microflora[J].Biotechnology and Bioprocess Engineering,2009,14(3):307.

[39] NGUYEN P K T,KIM J,DAS G,et al.Optimization of simultaneous dark fermentation and microbial electrolysis cell for hydrogen production from macroalgae using response surface methodo-logy[J].Biochemical Engineering Journal,2021,171:108.

[40] CAI J L,WANG R Y,WU Q,et al.Characterization of a hydrogen-producing bacterium Clostridium sp.5A-1[J].International Journal of Green Energy,2021,18(6):624.

[41] RASHID N,LEE K,HAN J I,et al.Hydrogen production by immobilized Chlorella vulgaris:optimizing pH,carbon source and light[J].Bioprocess and Biosystems Engineering,2013,36(7):867.

[42] PARK J I,JINWON L,SIM S J,et al.Production of Hydrogen from marine macro-algae biomass using anaerobic sewage sludge microflora[J].Biotechnology and Bioprocess Engineering,2009,14(3):307.

[43] XIA A,MURPHY J D.Microalgal cultivation in treating liquid digestate from biogas systems[J].Trends in Biotechnology,2016,34(4):264.

[44] SALAKKAM A,SITTIJUNDA S,MAMIMIN C,et al.Valorization of microalgal biomass for biohydrogen generation:a review[J].Bioresource Technology,2021,322:124533.

[45] XIA A,CHENG J,DING L K,et al.Enhancement of energy production efficiency from mixed biomass of Chlorella pyrenoidosa and cassava starch through combined hydrogen fermentation and methanogenesis[J].Applied Energy,2014,120:23.

[46] XIA A,JACOB A,TABASSUM M R,et al.Production of hydrogen,ethanol and volatile fatty acids through co-fermentation of macro- and micro-algae[J].Bioresource Technology,2016,205:118.

[47] MAO C L,FENG Y Z,WANG X J,et al.Review on research achievements of biogas from anaerobic digestion[J].Renewable and Sustainable Energy Reviews,2015,45:540.

[48] PATHY A,NAGESHWARI K,RAMARAJ R,et al.Biohydrogen production using algae:potentiality,economics and challenges[J].Bioresour Technology,2022,360:127514.

[49] ZAIDI A A,FENG R,MALIK A,et al.Combining microwave pretreatment with iron oxide nanoparticles enhanced biogas and hydrogen yield from green algae[J].Processes,2019,7(1):24.

[50] ZHAO M X,LIU Z L,XU J L,et al.Dosing effect of nano zero valent iron(NZVI) on the dark hydrogen fermentation performance via lake algae and food waste co-digestion[J].Energy Reports,2020,6:3192.

[51] KOTHARI R,KUMAR V,PATHAK V V,et al.A critical review on factors influencing fermentative hydrogen production[J].Frontiers in Bioscience(Landmark Edition),2017,22:1195.

[52] VENKATA SUBHASH G,VENKATA MOHAN S.Deoiled algal cake as feedstock for dark fermentative biohydrogen production:an integrated biorefinery approach[J].International Journal of Hydrogen Energy,2014,39(18):9573.

[53] SUBHASH G V,MOHAN S V.Deoiled algal cake as feedstock for dark fermentative biohydrogen production:an integrated biorefinery approach[J].International Journal of Hydrogen Energy,2014,39(18):9573.

[54] SUN J X,YUAN X Z,SHI X S,et al.Fermentation of Chlorella sp.for anaerobic bio-hydrogen production:influences of inoculum-substrate ratio,volatile fatty acids and NADH[J].Bioresource Technology,2011,102(22):10480.

[55] CHOUDHARY P,ASSEMANY P P,NAAZ F,et al.A review of biochemical and thermochemical energy conversion routes of wastewater grown algal biomass[J].Science of the Total Environment,2020,726:137961.

[56] ZHU L D,WANG Z M,SHU Q,et al.Nutrient removal and biodiesel production by integration of freshwater algae cultivation with piggery wastewater treatment[J].Water Research,2013,47(13):4294.

[57] NEVES L A,NEMESTóTHY N,ALVES V D,et al.Separation of biohydrogen by supported ionic liquid membranes[J].Desalination,2009,240(1/2/3):311.