Topics in Current Chemistry (2020) 378:15
1 3
nanotubes for water remediation. Sci Total Environ 698:134214. https ://doi.org/10.1016/j.scito
tenv.2019.13421 4
3. Cova CM, Zuliani A, Santiago ARP, Caballero A, Muñoz-Batista MJ, Luque R (2018) Microwaveassisted preparation of Ag/Ag 2 S carbon hybrid structures from pig bristles as efficient HER catalysts. J Mater Chem A 6:21516–21523
4. Franco A, Cebrián-García S, Rodríguez-Padrón D, Puente-Santiago AR, Muñoz-Batista MJ,
Caballero A, Balu AM, Romero AA, Luque R (2018) Encapsulated laccases as effective electrocatalysts for oxygen reduction reactions. ACS Sustain Chem Eng 6:11058–11062
5. Ahsan MA, Jabbari V, El-Gendy AA, Curry ML, Noveron JC (2019) Ultrafast catalytic reduction
of environmental pollutants in water via MOF-derived magnetic Ni and Cu nanoparticles encapsulated in porous carbon. Appl Surf Sci 597:142608
6. Ahsan MA, Deemer E, Fernandez-Delgado O, Wang H, Curry ML, El-Gendy AA, Noveron JC
(2019) Fe nanoparticles encapsulated in MOF-derived carbon for the reduction of 4-nitrophenol
and methyl orange in water. Catal Commun 130:105753
7. Ahsan MA, Fernandez-Delgado O, Deemer E, Wang H, El-Gendy AA, Curry ML, Noveron JC
(2019) Carbonization of Co-BDC MOF results in magnetic C@Co nanoparticles that catalyze the
reduction of methyl orange and 4-nitrophenol in water. J Mol Liq 290:111059
8. Ostovar S, Franco A, Puente-Santiago AR, Pinilla-de Dios M, Rodriguez-Padron D, Shaterian
HR, Luque R (2018) Efficient mechanochemical bifunctional nanocatalysts for the conversion of
isoeugenol to vanillin. Front Chem 6:77. https ://doi.org/10.3389/fchem .2018.00077
9. Rodríguez-Padrón D, Puente-Santiago AR, Balu AM, Muñoz-Batista MJ, Luque R (2019) Environmental catalysis: present and future. ChemCatChem 11:18–38
10. Pacheco-Torgal F, Diamanti MV, Nazari A, Goran-Granqvist C, Pruna A, Amirkhanian SE (2018)
Nanotechnology in eco-efficient construction: materials, processes and applications. Woodhead
Publishing, Sawston
11. Sanad MF, Shalan AE, Bazid SM, Serea ESA, Hashem EM, Nabih S, Ahsan MA (2019) A graphene gold nanocomposite-based 5-FU drug and the enhancement of the MCF-7 cell line treatment. RSC Adv 9:31021–31029
12. Chen S, Li R, Li X, Xie J (2018) Electrospinning: an enabling nanotechnology platform for drug
delivery and regenerative medicine. Adv Drug Deliv Rev 132:188–213. https ://doi.org/10.1016/j.
addr.2018.05.001
13. Yang Y, Chawla A, Zhang J, Esa A, Jang HL, Khademhosseini A (2019) Applications of nanotechnology for regenerative medicine; healing tissues at the nanoscale. Principles of Regenerative
Medicine, pp 485–504
14. Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354(6348):56–58
15. Simon J, Flahaut E, Golzio M (2019) Overview of carbon nanotubes for biomedical applications.
Materials (Basel). https ://doi.org/10.3390/ma120 40624
16. Eatemadi A, Daraee H, Karimkhanloo H, Kouhi M, Zarghami N, Akbarzadeh A, Abasi M, Hanifehpour Y, Joo SW (2014) Carbon nanotubes: properties, synthesis, purification, and medical
applications. Nanoscale Res Lett 9(1):393. https ://doi.org/10.1186/1556-276x-9-393
17. Galano A (2010) Carbon nanotubes: promising agents against free radicals. Nanoscale
2(3):373–380
18. Lu JP (1997) Elastic properties of carbon nanotubes and nanoropes. Phys Rev Lett
79(7):1297–1300
19. Treacy MMJ, Ebbesen TW, Gibson JM (1996) Exceptionally high Young’s modulus observed for
individual carbon nanotubes. Nature 381(6584):678–680
20. Wong EW, Sheehan PE, Lieber CM (1997) Nanobeam mechanics: elasticity, strength, and toughness of nanorods and nanotubes. Science 277(5334):1971–1975
21. Wei BQ, Vajtai R, Ajayan PM (2001) Reliability and current carrying capacity of carbon nanotubes. Appl Phys Lett 79(8):1172–1174
22. White CT, Todorov TN (1998) Carbon nanotubes as long ballistic conductors. Nature
393(6682):240–242
23. Ebbesen TW, Lezec HJ, Hiura H, Bennett JW, Ghaemi HF, Thio T (1996) Electrical conductivity
of individual carbon nanotubes. Nature 382(6586):54–56
24. Hills G, Lau C, Wright A, Fuller S, Bishop MD, Srimani T, Kanhaiya P, Ho R, Amer A, Stein
Y, Murphy D, Arvind Chandrakasan A, Shulaker MM (2019) Modern microprocessor built from
complementary carbon nanotube transistors. Nature 572(7771):595–602. https ://doi.org/10.1038/
s4158 6-019-1493-8
206
Reprinted from the journal
1 3
nanotubes for water remediation. Sci Total Environ 698:134214. https ://doi.org/10.1016/j.scito
tenv.2019.13421 4
3. Cova CM, Zuliani A, Santiago ARP, Caballero A, Muñoz-Batista MJ, Luque R (2018) Microwaveassisted preparation of Ag/Ag 2 S carbon hybrid structures from pig bristles as efficient HER catalysts. J Mater Chem A 6:21516–21523
4. Franco A, Cebrián-García S, Rodríguez-Padrón D, Puente-Santiago AR, Muñoz-Batista MJ,
Caballero A, Balu AM, Romero AA, Luque R (2018) Encapsulated laccases as effective electrocatalysts for oxygen reduction reactions. ACS Sustain Chem Eng 6:11058–11062
5. Ahsan MA, Jabbari V, El-Gendy AA, Curry ML, Noveron JC (2019) Ultrafast catalytic reduction
of environmental pollutants in water via MOF-derived magnetic Ni and Cu nanoparticles encapsulated in porous carbon. Appl Surf Sci 597:142608
6. Ahsan MA, Deemer E, Fernandez-Delgado O, Wang H, Curry ML, El-Gendy AA, Noveron JC
(2019) Fe nanoparticles encapsulated in MOF-derived carbon for the reduction of 4-nitrophenol
and methyl orange in water. Catal Commun 130:105753
7. Ahsan MA, Fernandez-Delgado O, Deemer E, Wang H, El-Gendy AA, Curry ML, Noveron JC
(2019) Carbonization of Co-BDC MOF results in magnetic C@Co nanoparticles that catalyze the
reduction of methyl orange and 4-nitrophenol in water. J Mol Liq 290:111059
8. Ostovar S, Franco A, Puente-Santiago AR, Pinilla-de Dios M, Rodriguez-Padron D, Shaterian
HR, Luque R (2018) Efficient mechanochemical bifunctional nanocatalysts for the conversion of
isoeugenol to vanillin. Front Chem 6:77. https ://doi.org/10.3389/fchem .2018.00077
9. Rodríguez-Padrón D, Puente-Santiago AR, Balu AM, Muñoz-Batista MJ, Luque R (2019) Environmental catalysis: present and future. ChemCatChem 11:18–38
10. Pacheco-Torgal F, Diamanti MV, Nazari A, Goran-Granqvist C, Pruna A, Amirkhanian SE (2018)
Nanotechnology in eco-efficient construction: materials, processes and applications. Woodhead
Publishing, Sawston
11. Sanad MF, Shalan AE, Bazid SM, Serea ESA, Hashem EM, Nabih S, Ahsan MA (2019) A graphene gold nanocomposite-based 5-FU drug and the enhancement of the MCF-7 cell line treatment. RSC Adv 9:31021–31029
12. Chen S, Li R, Li X, Xie J (2018) Electrospinning: an enabling nanotechnology platform for drug
delivery and regenerative medicine. Adv Drug Deliv Rev 132:188–213. https ://doi.org/10.1016/j.
addr.2018.05.001
13. Yang Y, Chawla A, Zhang J, Esa A, Jang HL, Khademhosseini A (2019) Applications of nanotechnology for regenerative medicine; healing tissues at the nanoscale. Principles of Regenerative
Medicine, pp 485–504
14. Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354(6348):56–58
15. Simon J, Flahaut E, Golzio M (2019) Overview of carbon nanotubes for biomedical applications.
Materials (Basel). https ://doi.org/10.3390/ma120 40624
16. Eatemadi A, Daraee H, Karimkhanloo H, Kouhi M, Zarghami N, Akbarzadeh A, Abasi M, Hanifehpour Y, Joo SW (2014) Carbon nanotubes: properties, synthesis, purification, and medical
applications. Nanoscale Res Lett 9(1):393. https ://doi.org/10.1186/1556-276x-9-393
17. Galano A (2010) Carbon nanotubes: promising agents against free radicals. Nanoscale
2(3):373–380
18. Lu JP (1997) Elastic properties of carbon nanotubes and nanoropes. Phys Rev Lett
79(7):1297–1300
19. Treacy MMJ, Ebbesen TW, Gibson JM (1996) Exceptionally high Young’s modulus observed for
individual carbon nanotubes. Nature 381(6584):678–680
20. Wong EW, Sheehan PE, Lieber CM (1997) Nanobeam mechanics: elasticity, strength, and toughness of nanorods and nanotubes. Science 277(5334):1971–1975
21. Wei BQ, Vajtai R, Ajayan PM (2001) Reliability and current carrying capacity of carbon nanotubes. Appl Phys Lett 79(8):1172–1174
22. White CT, Todorov TN (1998) Carbon nanotubes as long ballistic conductors. Nature
393(6682):240–242
23. Ebbesen TW, Lezec HJ, Hiura H, Bennett JW, Ghaemi HF, Thio T (1996) Electrical conductivity
of individual carbon nanotubes. Nature 382(6586):54–56
24. Hills G, Lau C, Wright A, Fuller S, Bishop MD, Srimani T, Kanhaiya P, Ho R, Amer A, Stein
Y, Murphy D, Arvind Chandrakasan A, Shulaker MM (2019) Modern microprocessor built from
complementary carbon nanotube transistors. Nature 572(7771):595–602. https ://doi.org/10.1038/
s4158 6-019-1493-8
206
Reprinted from the journal
