

The use of microalgae biomass for the production of marketable products. Part 4. The manufacture of biofuels from microalgae using bioengineering approaches
https://doi.org/10.18412/1816-0387-2023-3-66-80
Abstract
This is a review of the literature devoted to the production of microalgae biomass and its processing into marketable chemical products using advanced bioengineering approaches. The paper considers approaches to the manufacture of biofuels – biodiesel fuel, ethanol and hydrogen – from microalgae. Methods of biomass pretreatment, recovery of metabolites and their processing into biofuels are discussed.
About the Authors
Yu. V. SamoylovaRussian Federation
K. N. Sorokina
Russian Federation
V. N. Parmon
Russian Federation
References
1. Пилигаев А.В., Сорокина К.Н., Пармон В.Н. // Вестник Новосибирского гос. ун-та. Серия: Биология, клиническая медицина. 2015. T. 13. № 4. C. 19—26.
2. Nepstad D.C., Stickler C.M., Filho B.S., Merry F. // Philosophical Transactions of the Royal Society B: Biological Sciences. 2008. V. 363. № 1498. P. 1737-1746.
3. Василенко А.П., Иванникова Е.М., Систер В.Г., Ямчук А.И., Цедилин А.Н., Иванникова Ю.М. // Технические науки — от теории к практике. 2015. T. 47. C. 63—68.
4. Сорокина К.Н., Яковлев В.А., Пилигаев А.В., Кукушкин Р.Г., Пельтек С.Е., Колчанов Н.А., Пармон В.Н. // Катализ в промышленности. 2012. T. 2. C. 63—72.
5. González-Delgado Á.-D., Kafarov V. Microalgae based biorefinery: Issues to consider // CT&F - Ciencia, Tecnología y Futuro. 2011. V. 4. P. 5-22.
6. Slade R., Bauen A. // Biomass and Bioenergy. 2013. V. 53. P. 29-38.
7. Соловченко А.Е., Лобакова Е.С., Барский Е.Л., Саванина Я.В., Лукьянов А.А., Карпичников М.П. // Биотехнология. 2011. T. 6. C. 70—88.
8. Freedman B., Butterfield R.O., Pryde E.H. // Journal of the American Oil Chemists’ Society. 1986. V. 63. № 10. P. 1375-1380.
9. Пилигаев А.В., Сорокина К.Н., Самойлова Ю.В., Пармон В.Н. // Катализ в промышленности. 2019. T. 19. № 2. C. 149—162.
10. Nematian T., Shakeri A., Salehi Z., Saboury A.A. // Biotechnology for Biofuels. 2020. V. 13. № 1. P. 57.
11. Nematian T., Salehi Z., Shakeri A. // Renewable Energy. 2020. V. 146. P. 1796-1804.
12. Aghabeigi F., Nikkhah H., Zilouei H., Bazarganipour M. // Process Biochemistry. 2023. V. 126. P. 171-185.
13. Picó E.A., López C., Cruz-Izquierdo Á., Munarriz M., Iruretagoyena F.J., Serra J.L., Llama M.J. // J Biosci Bioeng. 2018. V. 126. № 4. P. 451-457.
14. De Vasconcellos A., Miller A.H., Aranda D.A.G., Nery J.G. // Colloids and Surfaces B: Biointerfaces. 2018. V. 165. P. 150-157.
15. Brennan L., Owende P. // Renewable and Sustainable Energy Reviews. 2010. V. 14. № 2. P. 557-577.
16. Makareviciene V., Gumbyte M., Sendzikiene E. // Food and Bioproducts Processing. 2019. V. 116. P. 89-97.
17. Navarro López E., Robles Medina A., Esteban Cerdán L., González Moreno P.A., Macías Sánchez M.D., Molina Grima E. // Biomass and Bioenergy. 2016. V. 93. P. 6-12.
18. He Y., Wang X., Wei H., Zhang J., Chen B., Chen F. // Biotechnology for Biofuels. 2019. V. 12. № 1. P. 78.
19. Guldhe A., Singh P., Renuka N., Bux F. // Fuel. 2019. V. 237. P. 1112-1118.
20. Xie D., Ji X., Zhou Y., Dai J., He Y., Sun H., Guo Z., Yang Y., Zheng X., Chen B. // Bioresource Technology. 2022. V. 349. P. 126886.
21. Sánchez-Bayo A., Morales V., Rodríguez R., Vicente G., Bautista L.F. // Catalysts. 2019. V. 9. № 3. P. 296.
22. Liu Y., Chen D., Yan Y., Peng C., Xu L. // Bioresource Technology. 2011. V. 102. № 22. P. 10414-10418.
23. Bauer G., Lima S., Chenevard J., Sugnaux M., Fischer F. // ACS Sustainable Chemistry & Engineering. 2017. V. 5. № 2. P. 1931-1937.
24. Lai J.-Q., Hu Z.-L., Wang P.-W., Yang Z. // Fuel. 2012. V. 95. P. 329-333.
25. Lozano P., Bernal J.M., Gómez C., Álvarez E., Markiv B., García- Verdugo E., Luis S.V. // Catalysis Today. 2020. V. 346. P. 87-92.
26. Lozano P., Bernal J.M., Vaultier M. // Fuel. 2011. V. 90. № 11. P. 3461-3467.
27. Lozano P., Bernal J.M., Garcia-Verdugo E., Sanchez-Gomez G., Vaultier M., Burguete M.I., Luis S.V. // Green Chemistry. 2015. V. 17. № 7. P. 3706-3717.
28. Lakatos G.E., Ranglová K., Manoel J.C., Grivalský T., Kopecký J., Masojídek J. // Folia Microbiol (Praha). 2019. V. 64. № 5. P. 627-644.
29. Hernández D., Riaño B., Coca M., García-González M.C. // Chemical Engineering Journal. 2015. V. 262. P. 939-945.
30. Taleb A., Kandilian R., Touchard R., Montalescot V., Rinaldi T., Taha S., Takache H., Marchal L., Legrand J., Pruvost J. // Bioresour Technol. 2016. V. 218. P. 480-490.
31. Mollers K.B., Cannella D., Jørgensen H., Frigaard N.-U. // Biotechnology for Biofuels. 2014. V. 7. № 1. P. 64.
32. Hossain M.N.B., Basu J.K., Mamun M. // Procedia Engineering. 2015. V. 105. P. 733-738.
33. Kim H.M., Wi S.G., Jung S., Song Y., Bae H.J. // Bioresour Technol. 2015. V. 175. P. 128-134.
34. Nguyen M.T., Choi S.P., Lee J., Lee J.H., Sim S.J. // J. Microbiol Biotechnol. 2009. V. 19. № 2. P. 161-166.
35. Ho S.H., Chen Y.D., Chang C.Y., Lai Y.Y., Chen C.Y., Kondo A., Ren N.Q., Chang J.S. // Biotechnol Biofuels. 2017. V. 10. P. 27.
36. Zhou N., Zhang Y., Wu X., Gong X., Wang Q. // Bioresour Technol. 2011. V. 102. № 21. P. 10158-10161.
37. Shokrkar H., Ebrahimi S., Zamani M. // Fuel. 2017. V. 200. P. 380-386.
38. Harun R., Jason W.S.Y., Cherrington T., Danquah M.K. // Applied Energy. 2011. V. 88. № 10. P. 3464-3467.
39. Miranda J.R., Passarinho P.C., Gouveia L. // Appl Microbiol Biotechnol. 2012. V. 96. № 2. P. 555-564.
40. Megawati, Bahlawan Z.A.S., Damayanti A., Putri R.D.A., Triwibowo B., Prasetiawan H., Aji S.P.K., Prawisnu A. // Materials Today: Proceedings. 2022. V. 63. P. S373-S378.
41. Ajit A., Sulaiman A.Z., Chisti Y. // Food and Bioproducts Processing. 2017. V. 102. P. 123-135.
42. Rastogi M., Shrivastava S. // Renewable and Sustainable Energy Reviews. 2017. V. 80. P. 330-340.
43. Condor B.E., de Luna M.D.G., Chang Y.-H., Chen J.-H., Leong Y.K., Chen P.-T., Chen C.-Y., Lee D.-J., Chang J.-S. // Bioresource Technology. 2022. V. 363. P. 128002.
44. Ho S.-H., Huang S.-W., Chen C.-Y., Hasunuma T., Kondo A., Chang J.-S. // Bioresource Technology. 2013. V. 135. P. 191-198.
45. Aikawa S., Inokuma K., Wakai S., Sasaki K., Ogino C., Chang J.S., Hasunuma T., Kondo A. // Biotechnol Biofuels. 2018. V. 11. P. 50.
46. Aikawa S., Joseph A., Yamada R., Izumi Y., Yamagishi T., Matsuda F., Kawai H., Chang J.-S., Hasunuma T., Kondo A. // Energy & Environmental Science. 2013. V. 6. № 6. P. 1844-1849.
47. Li S., Li F., Zhu X., Liao Q., Chang J.-S., Ho S.-H. // Chemosphere. 2022. V. 291. P. 132717.
48. Ahmed S.F., Mofijur M., Nahrin M., Chowdhury S.N., Nuzhat S., Alherek M., Rafa N., Ong H.C., Nghiem L.D., Mahlia T.M.I. // International Journal of Hydrogen Energy. 2022. V. 47. № 88. P. 37321-37342.
49. Happe T., Schütz K., Böhme H. // J Bacteriol. 2000. V. 182. № 6. P. 1624-1631.
50. Torzillo G., Scoma A., Faraloni C., Ena A., Johanningmeier U. // International Journal of Hydrogen Energy. 2009. V. 34. № 10. P. 4529-4536.
51. Manoyan J., Samovich T., Kozel N., Demidchik V., Gabrielyan L. // International Journal of Hydrogen Energy. 2022. V. 47. № 38. P. 16815-16823.
52. Laurinavichene T.V., Fedorov A.S., Ghirardi M.L., Seibert M., Tsygankov A.A. // International Journal of Hydrogen Energy. 2006. V. 31. № 5. P. 659-667.
53. Kosourov S.N., Ghirardi M.L., Seibert M. // International Journal of Hydrogen Energy. 2011. V. 36. № 3. P. 2044-2048.
54. Kosourov S., Tsygankov A., Seibert M., Ghirardi M.L. // Biotechnol Bioeng. 2002. V. 78. № 7. P. 731-740.
55. Xia A., Cheng J., Song W., Su H., Ding L., Lin R., Lu H., Liu J., Zhou J., Cen K. // Renewable and Sustainable Energy Reviews. 2015. V. 51. P. 209-230.
56. Das D., Veziroğlu T N. // International Journal of Hydrogen Energy. 2001. V. 26. № 1. P. 13-28.
57. Wang Y., Ho S.-H., Yen H.-W., Nagarajan D., Ren N.-Q., Li S., Hu Z., Lee D.-J., Kondo A., Chang J.-S. // Biotechnology Advances. 2017. V. 35. № 8. P. 1049-1059.
58. Yun Y.-M., Jung K.-W., Kim D.-H., Oh Y.-K., Shin H.-S. // International Journal of Hydrogen Energy. 2012. V. 37. № 20. P. 15533-15539.
59. Nobre B.P., Villalobos F., Barragán B.E., Oliveira A.C., Batista A.P., Marques P.A.S.S., Mendes R.L., Sovová H., Palavra A.F., Gouveia L. // Bioresource Technology. 2013. V. 135. P. 128-136.
60. Batista A.P., Moura P., Marques P.A.S.S., Ortigueira J., Alves L., Gouveia L. // Fuel. 2014. V. 117. P. 537-543.
61. Yang Z., Guo R., Xu X., Fan X., Li X. // International Journal of Hydrogen Energy. 2010. V. 35. № 18. P. 9618-9623.
62. Roy S., Kumar K., Ghosh S., Das D. // Biomass and Bioenergy. 2014. V. 61. P. 157-166.
63. Wieczorek N., Kucuker M. A., Kuchta K. // Applied Energy. 2014. V. 132. P. 108-117.
64. Xia A., Cheng J., Ding L., Lin R., Song W., Zhou J., Cen K. // Applied Energy. 2014. V. 120. P. 23-30.
65. Yang Z., Guo R., Xu X., Fan X., Luo S. // Applied Energy. 2011. V. 88. № 10. P. 3468-3472.
66. Efremenko E.N., Nikolskaya A.B., Lyagin I.V., Senko O.V., Makhlis T.A., Stepanov N.A., Maslova O.V., Mamedova F., Varfolomeev S.D. // Bioresource Technology. 2012. V. 114. P. 342-348.
Review
For citations:
Samoylova Yu.V., Sorokina K.N., Parmon V.N. The use of microalgae biomass for the production of marketable products. Part 4. The manufacture of biofuels from microalgae using bioengineering approaches. Kataliz v promyshlennosti. 2023;23(3):66-80. (In Russ.) https://doi.org/10.18412/1816-0387-2023-3-66-80