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Venkatesh, M., Nelsen, M., Nguyen, B., Roumeli, E., 2023. Fabricating Strong and
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2302067. https://doi.org/10.1002/adfm.202302067
25. Jacquet, S., Zhong, X., Parvathi, A., Ram, A.S.P., 2013. First description of a
cyanophage infecting the cyanobacterium Arthrospira platensis (Spirulina). Journal of
Applied Phycology 25, 195–203. https://doi.org/10.1007/s10811-012-9853-x
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15. Costa, J.A.V., Freitas, B.C.B., Rosa, G.M., Moraes, L., Morais, M.G., Mitchell, B.G.,
2019. Operational and economic aspects of Spirulina-based biorefinery. Bioresource
Technology 292, 121946. https://doi.org/10.1016/j.biortech.2019.121946
16. Danesi, E.D.G, Rangel-Yagui C.O, Carvalho J.C.M. And Sato S, 2004. Effect of
reducing the light intensity on the growth and production of chlorophyll by Spirulina
platensis. Biomass and Bioenergy: 329-335 dans les mares natronées du Kanem
(Tchad). Cah. O.R.S.T.O.M., sér. Hydrobiol., vol 2, 119-125.
17. Dianursanti, Gozan, M., Noviasari, C., 2018. The effect of glycerol addition as
plasticizer in Spirulina platensis based bioplastic. E3S Web Conf. 67, 03048.
https://doi.org/10.1051/e3sconf/20186703048
18. Dubey, R.C., 2006. A textbook of Biotechnology. Fourth revised and enlarge edition,
S. chand and company limited. 419-421.
19. Fais, G., Manca, A., Bolognesi, F., Borselli, M., Concas, A., Busutti, M., Broggi, G.,
Sanna, P., Castillo-Aleman, Y.M., Rivero-Jiménez, R.A., Bencomo-Hernandez, A.A.,
Ventura-Carmenate, Y., Altea, M., Pantaleo, A., Gabrielli, G., Biglioli, F., Cao, G.,
Giannaccare, G., 2022. Wide Range Applications of Spirulina: From Earth to Space
Missions. Mar Drugs 20, 299. https://doi.org/10.3390/md20050299
20. Fox, R., 1999. Spirulina: Technique, Practice and Promise EDISUD, Aix in
Provencepp246.
21. Gershwin, M.E., Belay, A., 2007. Spirulina in Human Nutrition and Health. CRC
Press.
22. Hopewell, J., Dvorak, R., Kosior, E., 2009. Plastics recycling: challenges and
opportunities. Philosophical Transactions of the Royal Society B: Biological Sciences
364, 2115–2126. https://doi.org/10.1098/rstb.2008.0311
23. Hosler, D., Burkett, S.L., Tarkanian, M.J., 1999. Prehistoric Polymers: Rubber
Processing in Ancient Mesoamerica. Science 284, 1988–1991.
https://doi.org/10.1126/science.284.5422.1988
24. Iyer, H., Grandgeorge, P., Jimenez, A.M., Campbell, I.R., Parker, M., Holden, M.,
Venkatesh, M., Nelsen, M., Nguyen, B., Roumeli, E., 2023. Fabricating Strong and
Stiff Bioplastics from Whole Spirulina Cells. Advanced Functional Materials 33,
2302067. https://doi.org/10.1002/adfm.202302067
25. Jacquet, S., Zhong, X., Parvathi, A., Ram, A.S.P., 2013. First description of a
cyanophage infecting the cyanobacterium Arthrospira platensis (Spirulina). Journal of
Applied Phycology 25, 195–203. https://doi.org/10.1007/s10811-012-9853-x
26. Jourdan, M., Huth, M., Adrian, H., 1999. Superconductivity mediated by spin
fluctuations in the heavy-fermion compound UPd2 Al3. Nature 398, 47–49.
https://doi.org/10.1038/17977
27. Kirchhof, G., 2005. Plastic Properties, in: Encyclopedia of Soil Science - TwoVolume Set. CRC Press.
28. Kuhn, H., Medlin, D., 2000. Mechanical Testing of Polymers and Ceramics |
Mechanical Testing and Evaluation | Handbooks | ASM Digital Library. URL
https://dl.asminternational.org/handbooks/edited-volume/47/chapterabstract/542008/Mechanical-Testing-of-Polymers-and-Ceramics (accessed 7.2.24).
