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Conf Ser Mater Sci Eng 805(1):012030. https://doi.org/10.1088/1757-899X/805/1/012030
Baxter-Plant VS, Mikheenko IP, Macaskie LE (2003) Sulphate-reducing bacteria, palladium and
the reductive dehalogenation of chlorinated aromatic compounds. Biodegradation 14(2):83–90.
https://doi.org/10.1023/A:1024084611555
Baxter-Plant VS, Mikheenko IP, Robson M, Harrad SJ, Macaskie LE (2004) Dehalogenation of
chlorinated aromatic compounds using a hybrid bioinorganic catalyst on cells of Desulfovibrio
desulfuricans. Biotechnol Lett 26(24):1885–1890. https://doi.org/10.1007/s10529-004-6039-x
Bhargava A, Jain N, Khan MA, Pareek V, Dilip RV, Panwar J (2016) Utilizing metal tolerance
potential of soil fungus for efficient synthesis of gold nanoparticles with superior catalytic activity
for degradation of rhodamine B. J Environ Manag 183:22–32. https://doi.org/10.1016/j.jenvman.
2016.08.021
Bunge M, Søbjerg, LS, Rotaru AE, Gauthier D, Lindhardt AT, Hause G, Finster K, Kingshott
P, Skrydstrup T, Meyer RL (2010) Formation of palladium (0) nanoparticles at microbial
surfaces. Biotechnol Bioeng 107(2):206–215. https://doi.org/10.1002/bit.22801
Che L, Dong Y, Wu M, Zhao Y, Liu L, Zhou H (2017) Characterization of selenite reduction by Lysinibacillus sp. ZYM-1 and photocatalytic performance of biogenic selenium
nanospheres. ACS Sustain Chem Eng 5(3):2535–2543. https://doi.org/10.1021/acssuschemeng.
6b02889
Choi S, Johnston M, Wang GS, Huang CP (2018) A seasonal observation on the distribution of
engineered nanoparticles in municipal wastewater treatment systems exemplified by TiO 2 and
ZnO. Sci Total Environ 625:1321–1329. https://doi.org/10.1016/j.scitotenv.2017.12.326
Cui Y, Wei Q, Park H, Lieber CM (2001) Nanowire nanosensors for highly sensitive and selective
detection of biological and chemical species. Science 293(5533):1289–1292. https://doi.org/10.
1126/science.1062711
Cumbal L, Greenleaf J, Leun D, SenGupta, AK (2003) Polymer supported inorganic nanoparticles:
characterization and environmental applications. React Funct Polym 54(1–3):167–180. https://
doi.org/10.1016/S1381-5148(02)00192-X
De Stefano L, Moretti L, Rendina I, Rotiroti L (2005) Pesticides detection in water and humic
solutions using porous silicon technology. Sens Actuators B Chem 111:522–525. https://doi.org/
10.1016/j.snb.2005.03.047
Dong B, Liu G, Zhou J, Wang A, Wang J, Jin R, Lv H (2015) Biogenic gold nanoparticles-reduced
graphene oxide nanohybrid: synthesis, characterization and application in chemical and biological
reduction of nitroaromatics. RSC Adv 5(118):97798–97806. https://doi.org/10.1039/C5RA19
806B
Doshi B, Sillanpää M, Kalliola S (2018) A review of bio-based materials for oil spill treatment. Water
Res 135:262–277. https://doi.org/10.1016/j.watres.2018.02.034
Elegbede JA, Lateef A, Azeez MA, Asafa TB, Yekeen TA, Oladipo IC, Abbas SH, Beukes LS,
Gueguim-Kana EB (2019) Silver-gold alloy nanoparticles biofabricated by fungal xylanases
exhibited potent biomedical and catalytic activities. Biotechnol Progr 35:e2829. https://doi.org/
10.1002/btpr.2829.
Elegbede JA, Lateef A., Azeez MA, Asafa TB, Yekeen TA, Oladipo IC, Adebayo EA, Beukes
LS, Gueguim-Kana EB (2018) Fungal xylanases-mediated synthesis of silver nanoparticles for
catalytic and biomedical applications. IET Nanobiotechnol 12(6):857–863. https://doi.org/10.
1049/iet-nbt.2017.0299
Fang X, Wang Y, Wang Z, Jiang Z, Dong M (2019) Microorganism assisted synthesized
nanoparticles for catalytic applications. Energies 12(1):190. https://doi.org/10.3390/en12010190
Formoso P, Muzzalupo R, Tavano L, De Filpo G, Pasquale Nicoletta F (2016) Nanotechnology for
the environment and medicine. Mini Rev Med Chem 16(8):668–675. https://doi.org/10.2174/138
9557515666150709105129
A. Donia et al.
References
Adenigba VO, Omomowo IO, Oloke JK, Fatukasi BA, Odeniyi MA, Adedayo AA (2020). Evaluation of microalgal-based nanoparticles in the adsorption of heavy metals from wastewater. IOP
Conf Ser Mater Sci Eng 805(1):012030. https://doi.org/10.1088/1757-899X/805/1/012030
Baxter-Plant VS, Mikheenko IP, Macaskie LE (2003) Sulphate-reducing bacteria, palladium and
the reductive dehalogenation of chlorinated aromatic compounds. Biodegradation 14(2):83–90.
https://doi.org/10.1023/A:1024084611555
Baxter-Plant VS, Mikheenko IP, Robson M, Harrad SJ, Macaskie LE (2004) Dehalogenation of
chlorinated aromatic compounds using a hybrid bioinorganic catalyst on cells of Desulfovibrio
desulfuricans. Biotechnol Lett 26(24):1885–1890. https://doi.org/10.1007/s10529-004-6039-x
Bhargava A, Jain N, Khan MA, Pareek V, Dilip RV, Panwar J (2016) Utilizing metal tolerance
potential of soil fungus for efficient synthesis of gold nanoparticles with superior catalytic activity
for degradation of rhodamine B. J Environ Manag 183:22–32. https://doi.org/10.1016/j.jenvman.
2016.08.021
Bunge M, Søbjerg, LS, Rotaru AE, Gauthier D, Lindhardt AT, Hause G, Finster K, Kingshott
P, Skrydstrup T, Meyer RL (2010) Formation of palladium (0) nanoparticles at microbial
surfaces. Biotechnol Bioeng 107(2):206–215. https://doi.org/10.1002/bit.22801
Che L, Dong Y, Wu M, Zhao Y, Liu L, Zhou H (2017) Characterization of selenite reduction by Lysinibacillus sp. ZYM-1 and photocatalytic performance of biogenic selenium
nanospheres. ACS Sustain Chem Eng 5(3):2535–2543. https://doi.org/10.1021/acssuschemeng.
6b02889
Choi S, Johnston M, Wang GS, Huang CP (2018) A seasonal observation on the distribution of
engineered nanoparticles in municipal wastewater treatment systems exemplified by TiO 2 and
ZnO. Sci Total Environ 625:1321–1329. https://doi.org/10.1016/j.scitotenv.2017.12.326
Cui Y, Wei Q, Park H, Lieber CM (2001) Nanowire nanosensors for highly sensitive and selective
detection of biological and chemical species. Science 293(5533):1289–1292. https://doi.org/10.
1126/science.1062711
Cumbal L, Greenleaf J, Leun D, SenGupta, AK (2003) Polymer supported inorganic nanoparticles:
characterization and environmental applications. React Funct Polym 54(1–3):167–180. https://
doi.org/10.1016/S1381-5148(02)00192-X
De Stefano L, Moretti L, Rendina I, Rotiroti L (2005) Pesticides detection in water and humic
solutions using porous silicon technology. Sens Actuators B Chem 111:522–525. https://doi.org/
10.1016/j.snb.2005.03.047
Dong B, Liu G, Zhou J, Wang A, Wang J, Jin R, Lv H (2015) Biogenic gold nanoparticles-reduced
graphene oxide nanohybrid: synthesis, characterization and application in chemical and biological
reduction of nitroaromatics. RSC Adv 5(118):97798–97806. https://doi.org/10.1039/C5RA19
806B
Doshi B, Sillanpää M, Kalliola S (2018) A review of bio-based materials for oil spill treatment. Water
Res 135:262–277. https://doi.org/10.1016/j.watres.2018.02.034
Elegbede JA, Lateef A, Azeez MA, Asafa TB, Yekeen TA, Oladipo IC, Abbas SH, Beukes LS,
Gueguim-Kana EB (2019) Silver-gold alloy nanoparticles biofabricated by fungal xylanases
exhibited potent biomedical and catalytic activities. Biotechnol Progr 35:e2829. https://doi.org/
10.1002/btpr.2829.
Elegbede JA, Lateef A., Azeez MA, Asafa TB, Yekeen TA, Oladipo IC, Adebayo EA, Beukes
LS, Gueguim-Kana EB (2018) Fungal xylanases-mediated synthesis of silver nanoparticles for
catalytic and biomedical applications. IET Nanobiotechnol 12(6):857–863. https://doi.org/10.
1049/iet-nbt.2017.0299
Fang X, Wang Y, Wang Z, Jiang Z, Dong M (2019) Microorganism assisted synthesized
nanoparticles for catalytic applications. Energies 12(1):190. https://doi.org/10.3390/en12010190
Formoso P, Muzzalupo R, Tavano L, De Filpo G, Pasquale Nicoletta F (2016) Nanotechnology for
the environment and medicine. Mini Rev Med Chem 16(8):668–675. https://doi.org/10.2174/138
9557515666150709105129
