Topics in Current Chemistry (2020) 378:15
1 3
89. Isaac KM, Sabaraya IV, Ghousifam N, Das D, Pekkanen AM, Romanovicz DK, Long TE, Saleh
NB, Rylander MN (2018) Functionalization of single-walled carbon nanohorns for simultaneous fluorescence imaging and cisplatin delivery in  vitro. Carbon 138:309–318. https ://doi.
org/10.1016/j.carbo n.2018.06.020
90. Chen RJ, Zhang YG, Wang DW, Dai HJ (2001) Noncovalent sidewall functionalization of singlewalled carbon nanotubes for protein immobilization. J Am Chem Soc 123(16):3838–3839
91. Barry NPE, Therrien B (2016) Pyrene: the guest of honor, chapter 13. In: Sadjadi S (ed) Organic
nanoreactors. Academic Press, Boston, pp 421–461. https ://doi.org/10.1016/B978-0-12-80171
3-5.00013 -6
92. Bilalis P, Katsigiannopoulos D, Avgeropoulos A, Sakellariou G (2014) Non-covalent functionalization of carbon nanotubes with polymers. RSC Adv 4(6):2911–2934. https ://doi.org/10.1039/
c3ra4 4906h
93. Zhu J, Yudasaka M, Zhang MF, Kasuya D, Iijima S (2003) Surface modification approach to the
patterned assembly of single-walled carbon nanomaterials. Nano Lett 3(9):1239–1243
94. Zhang T, Ge Y, Wang X, Chen J, Huang X, Liao Y (2017) Polymeric ruthenium porphyrin-functionalized carbon nanotubes and graphene for levulinic ester transformations into γ-valerolactone
and pyrrolidone derivatives. ACS Omega 2(7):3228–3240. https ://doi.org/10.1021/acsom
ega.7b004 27
95. Li H, Zhou B, Lin Y, Gu L, Wang W, Fernando KAS, Kumar S, Allard LF, Sun Y-P (2004) Selective interactions of porphyrins with semiconducting single-walled carbon nanotubes. J Am Chem
Soc 126(4):1014–1015. https ://doi.org/10.1021/ja037 142o
96. Hu CY, Xu YJ, Duo SW, Zhang RF, Li MS (2009) Non-covalent functionalization of carbon
nanotubes with surfactants and polymers. J Chin Chem Soc-Taip 56(2):234–239. https ://doi.
org/10.1002/jccs.20090 0033
97. Vardharajula S, Ali SZ, Tiwari PM, Eroğlu E, Vig K, Dennis VA, Singh SR (2012) Functionalized
carbon nanotubes: biomedical applications. Int J Nanomed 7:5361–5374. https ://doi.org/10.2147/
IJN.S3583 2
98. Zhang LW, Zeng L, Barron AR, Monteiro-Riviere NA (2007) Biological interactions of functionalized single-wall carbon nanotubes in human epidermal keratinocytes. Int J Toxicol 26(2):103–113.
https ://doi.org/10.1080/10915 81070 12251 33
99. Sadegh H, Shahryari-ghoshekandi R (2015) Functionalization of carbon nanotubes and its application in nanomedicine: a review. Nanomed J 2(4):231–248. https ://doi.org/10.7508/nmj.2015.04.001
100. Vaisman L, Wagner HD, Marom G (2006) The role of surfactants in dispersion of carbon nanotubes. Adv Colloid Interface Sci 128:37–46. https ://doi.org/10.1016/j.cis.2006.11.007
101. Moore VC, Strano MS, Haroz EH, Hauge RH, Smalley RE, Schmidt J, Talmon Y (2003) Individually suspended single-walled carbon nanotubes in various surfactants. Nano Lett 3(10):1379–1382.
https ://doi.org/10.1021/nl034 524j
102. Niezabitowska E, Smith J, Prestly MR, Akhtar R, von Aulock Felix W, Lavallée Y, Ali-Boucetta
H, McDonald TO (2018) Facile production of nanocomposites of carbon nanotubes and polycaprolactone with high aspect ratios with potential applications in drug delivery. RSC Adv 8(30):16444–
16454. https ://doi.org/10.1039/C7RA1 3553J
103. Negri V, Cerpa A, Lopez-Larrubia P, Nieto-Charques L, Cerdan S, Ballesteros P (2010) Nanotubular paramagnetic probes as contrast agents for magnetic resonance imaging based on the diffusion
tensor. Angew Chem Int Ed 49(10):1813–1815
104. Cerpa A, Kober M, Calle D, Negri V, Gavira JM, Hernanz A, Briones F, Cerdan S, Ballesteros P
(2013) Single-walled carbon nanotubes as anisotropic relaxation probes for magnetic resonance
imaging. Medchemcomm 4(4):669–672
105. Bharti A, Cheruvally G (2018) Surfactant assisted synthesis of Pt-Pd/MWCNT and evaluation as
cathode catalyst for proton exchange membrane fuel cell. Int J Hydrogen Energy 43(31):14729–
14741. https ://doi.org/10.1016/j.ijhyd ene.2018.06.009
106. Yasujima R, Yasueda K, Horiba T, Komaba S (2018) Multi-enzyme immobilized anodes utilizing maltose fuel for biofuel cell applications. ChemElectroChem 5(16):2271–2278. https ://doi.
org/10.1002/celc.20180 0370
107. Martínez-Paz P, Negri V, Esteban-Arranz A, Martínez-Guitarte JL, Ballesteros P, Morales M
(2019) Effects at molecular level of multi-walled carbon nanotubes (MWCNT) in Chironomus
riparius (DIPTERA) aquatic larvae. Aquat Toxicol 209:42–48. https ://doi.org/10.1016/j.aquat
ox.2019.01.017
210
Reprinted from the journal
Précédent

- 217/260

Suivant