Page 90 - EER-1-1
P. 90
Explora: Environment
and Resource Experimental application of GQDs for nuclear materials removal
Environmental, health, political, and sociological Santos-Oliveira R. Using graphene quantum dots for
considerations. Health Phys. 2020;118:360-381. treating radioactive liquid waste. Environ Sci Pollut Res Int.
doi: 10.1097/HP.0000000000001237 2020;27(3):3508-3512.
15. Ohtsuru A, Tanigawa K, Kumagai A, et al. Nuclear disasters doi: 10.1007/s11356-019-07155-x
and health: Lessons learned, challenges, and proposals. 24. Elwakeel KZ, Atia AA, Guibal E. Fast removal of uranium from
Lancet. 2015;386:489-497. aqueous solutions using tetraethylenepentamine modified
doi: 10.1016/S0140-6736(15)60994-1 magnetic chitosan resin. Bioresour Technol. 2014;160:107-114.
16. Tin D, Galehan J, Markovic V, Ciottone GR. Suicide bombing doi: 10.1016/j.biortech.2014.01.037
terrorism. Prehosp Disaster Med. 2021;36:664-668. 25. Verma S, Kim KH. Graphene-based materials for the
doi: 10.1017/S1049023X21001151 adsorptive removal of uranium in aqueous solutions.
Environ Int. 2022;158:106944.
17. Laine JE. War in Europe: Health implications of
environmental nuclear disaster amidst war. Eur J Epidemiol. doi: 10.1016/j.envint.2021.106944
2022;37:221-225. 26. Wang Z, Zhang L, Zhang K, et al. Application of carbon
doi: 10.1007/s10654-022-00862-9 dots and their composite materials for the detection and
removal of radioactive ions: A review. Chemosphere.
18. Poushali Das P, Ganguly S, Ahmed SR, et al. Carbon dot 2022;287:132313.
biopolymer-based flexible functional films for antioxidant
and food monitoring applications. ACS Appl Polym Mater. doi: 10.1016/j.chemosphere.2021.132313
2022;4(12):9323-9340. 27. Rauwel P, Rauwel E. Towards the extraction of radioactive
doi: 10.1021/acsapm.2c01579 cesium-137 from water via graphene/CNT and
nanostructured prussian blue hybrid nanocomposites:
19. Alzahrani A. Fluorescent carbon dots in situ polymerized
biodegradable semi-interpenetrating tough hydrogel films A review. Nanomaterials. 2019;9:682.
with antioxidant and antibacterial activity for applications doi: 10.3390/nano9050682
in food industry. Food Chem. 2024;447:138905.
28. Han S, Um W, Kim WS. Development of bismuth-
doi: 10.1016/j.foodchem.2024.138905 functionalized graphene oxide to remove radioactive iodine.
20. Parveen S, Nazeer S, Chotana GA, et al. Designing of Dalton Trans. 2019;48:478-485.
chitosan/gelatin based nanocomposite films integrated with doi: 10.1039/C8DT03745K
Vachellia nilotica gum carbon dots for smart food packaging
applications. Int J Biol Macromol. 2024;130208. 29. De Menezes FD, Dos Reis SR, Pinto SR, et al. Graphene
quantum dots unraveling: Green synthesis, characterization,
doi: 10.1016/j.ijbiomac.2024.130208 radiolabeling with 99mTc, in vivo behavior and mutagenicity.
21. Elwakeel KZ, Atia AA. Uptake of U(VI) from aqueous Mater Sci Eng C Mater Biol Appl. 2019;102:405-414.
media by magnetic Schiff’s base chitosan composite. J Clean doi: 10.1016/j.msec.2019.04.058
Prod. 2014;70:292-302.
30. Thermofisher. Characterizing Graphene with Raman
doi: 10.1016/j.jclepro.2014.02.017 Spectroscopy. Available from: https://assets.thermofisher.com/
22. Hamza MF, Fouda A, Elwakeel KZ, Wei Y, Guibal E, tfs-assets/msd/application-notes/an53174-characterizing-
Hamad NA. Phosphorylation of guar gum/magnetite/ graphene-raman-spectroscopy.pdf [Last accessed on
chitosan nanocomposites for uranium (VI) sorption and 2023 Apr 29].
antibacterial applications. Molecules. 2021;26(7):1920.
31. Arora S, Das SP. Graphene quantum dots: Synthesis and
doi: 10.3390/molecules26071920 applications. E3S Web Conf. 2024;509:01012.
23. De Menezes FD, Alencar LM, Dos Santos CC, Da Silva MI, doi: 10.1051/e3sconf/202450901012
Volume 1 Issue 1 (2024) 8 doi: 10.36922/eer.3403

