-
1
-
-
78649748233
-
Carbon Nanotubes-Based Chemiresistive Biosensors for Detection of Microorganisms
-
García-Aljaro, C.; Cella, L. N.; Shirale, D. J.; Park, M.; Muñoz, F. J.; Yates, M. V.; Mulchandani, A. Carbon Nanotubes-Based Chemiresistive Biosensors for Detection of Microorganisms Biosens. Bioelectron. 2010, 26, 1437-1441
-
(2010)
Biosens. Bioelectron.
, vol.26
, pp. 1437-1441
-
-
García-Aljaro, C.1
Cella, L.N.2
Shirale, D.J.3
Park, M.4
Muñoz, F.J.5
Yates, M.V.6
Mulchandani, A.7
-
2
-
-
27744504244
-
Applications of Carbon Nanotubes in Drug Delivery
-
Bianco, A.; Kostarelos, K.; Prato, M. Applications of Carbon Nanotubes in Drug Delivery Curr. Opin. Chem. Biol. 2005, 9, 674-679
-
(2005)
Curr. Opin. Chem. Biol.
, vol.9
, pp. 674-679
-
-
Bianco, A.1
Kostarelos, K.2
Prato, M.3
-
3
-
-
70350620147
-
Application of Carbon Nanotube Technology for Removal of Contaminants in Drinking Water: A Review
-
Upadhyayula, V. K. K.; Deng, S.; Mitchell, M. C.; Smith, G. B. Application of Carbon Nanotube Technology for Removal of Contaminants in Drinking Water: A Review Sci. Total Environ. 2009, 408, 1-13
-
(2009)
Sci. Total Environ.
, vol.408
, pp. 1-13
-
-
Upadhyayula, V.K.K.1
Deng, S.2
Mitchell, M.C.3
Smith, G.B.4
-
4
-
-
52049094113
-
Carbon Nanotubes and Mesenchymal Stem Cells: Biocompatibility, Proliferation and Differentiation
-
Mooney, E.; Dockery, P.; Greiser, U.; Murphy, M.; Barron, V. Carbon Nanotubes and Mesenchymal Stem Cells: Biocompatibility, Proliferation and Differentiation Nano Lett. 2008, 8, 2137-2143
-
(2008)
Nano Lett.
, vol.8
, pp. 2137-2143
-
-
Mooney, E.1
Dockery, P.2
Greiser, U.3
Murphy, M.4
Barron, V.5
-
5
-
-
34548089991
-
Single-Walled Carbon Nanotubes Exhibit Strong Antimicrobial Activity
-
Kang, S.; Pinault, M.; Pfefferle, L. D.; Elimelech, M. Single-Walled Carbon Nanotubes Exhibit Strong Antimicrobial Activity Langmuir 2007, 23, 8670-8673
-
(2007)
Langmuir
, vol.23
, pp. 8670-8673
-
-
Kang, S.1
Pinault, M.2
Pfefferle, L.D.3
Elimelech, M.4
-
6
-
-
65249111486
-
Inactivation of Bacterial Pathogens by Carbon Nanotubes in Suspensions
-
Arias, L. R.; Yang, L. Inactivation of Bacterial Pathogens by Carbon Nanotubes in Suspensions Langmuir 2009, 25, 3003-3012
-
(2009)
Langmuir
, vol.25
, pp. 3003-3012
-
-
Arias, L.R.1
Yang, L.2
-
7
-
-
53149099014
-
Strong Antimicrobial Coatings: Single-Walled Carbon Nanotubes Armored with Biopolymers
-
Nepal, D.; Balasubramanian, S.; Simonian, A. L.; Davis, V. A. Strong Antimicrobial Coatings: Single-Walled Carbon Nanotubes Armored with Biopolymers Nano Lett. 2008, 8, 1896-1901
-
(2008)
Nano Lett.
, vol.8
, pp. 1896-1901
-
-
Nepal, D.1
Balasubramanian, S.2
Simonian, A.L.3
Davis, V.A.4
-
8
-
-
57849130273
-
Capture of Bacteria by Flexible Carbon Nanotubes
-
Akasaka, T.; Watari, F. Capture of Bacteria by Flexible Carbon Nanotubes Acta Biomater. 2009, 5, 607-612
-
(2009)
Acta Biomater.
, vol.5
, pp. 607-612
-
-
Akasaka, T.1
Watari, F.2
-
9
-
-
43149093956
-
A Single-Walled-Carbon-Nanotube Filter for Removal of Viral and Bacterial Pathogens
-
Brady-Estévez, A. S.; Kang, S.; Elimelech, M. A Single-Walled-Carbon-Nanotube Filter for Removal of Viral and Bacterial Pathogens Small 2008, 4, 481-484
-
(2008)
Small
, vol.4
, pp. 481-484
-
-
Brady-Estévez, A.S.1
Kang, S.2
Elimelech, M.3
-
10
-
-
47349085605
-
Antibacterial Effects of Carbon Nanotubes: Size Does Matter!
-
Kang, S.; Herzberg, M.; Rodrigues, D. F.; Elimelech, M. Antibacterial Effects of Carbon Nanotubes: Size Does Matter! Langmuir 2008, 24, 6409-6413
-
(2008)
Langmuir
, vol.24
, pp. 6409-6413
-
-
Kang, S.1
Herzberg, M.2
Rodrigues, D.F.3
Elimelech, M.4
-
11
-
-
77957913029
-
Antibacterial Activity of Single-Walled Carbon Nanotubes: Length Effect
-
Yang, C.; Mamouni, J.; Tang, Y.; Yang, L. Antibacterial Activity of Single-Walled Carbon Nanotubes: Length Effect Langmuir 2010, 26, 16013-16019
-
(2010)
Langmuir
, vol.26
, pp. 16013-16019
-
-
Yang, C.1
Mamouni, J.2
Tang, Y.3
Yang, L.4
-
12
-
-
73849098305
-
Sharper and Faster "nano Darts" Kill More Bacteria: A Study of Antibacterial Activity of Individually Dispersed Pristine Single-Walled Carbon Nanotube
-
Liu, S.; Wei, L.; Hao, L.; Fang, N.; Chang, M. W.; Xu, R.; Yang, Y.; Chen, Y. Sharper and Faster "Nano Darts" Kill More Bacteria: A Study of Antibacterial Activity of Individually Dispersed Pristine Single-Walled Carbon Nanotube ACS Nano 2009, 3, 3891-3902
-
(2009)
ACS Nano
, vol.3
, pp. 3891-3902
-
-
Liu, S.1
Wei, L.2
Hao, L.3
Fang, N.4
Chang, M.W.5
Xu, R.6
Yang, Y.7
Chen, Y.8
-
13
-
-
54749125053
-
Physicochemical Determinants of Multiwalled Carbon Nanotube Bacterial Cytotoxicity
-
Kang, S.; Mauter, M. S.; Elimelech, M. Physicochemical Determinants of Multiwalled Carbon Nanotube Bacterial Cytotoxicity Environ. Sci. Technol. 2008, 42, 7528-7534
-
(2008)
Environ. Sci. Technol.
, vol.42
, pp. 7528-7534
-
-
Kang, S.1
Mauter, M.S.2
Elimelech, M.3
-
14
-
-
84861899754
-
Impact of Surface Functionalization on Bacterial Cytotoxicity of Single-Walled Carbon Nanotubes
-
Pasquini, L. M.; Hashmi., S. M.; Sommer, T. J.; Elimelech, M.; Zimmerman, J. B. Impact of Surface Functionalization on Bacterial Cytotoxicity of Single-Walled Carbon Nanotubes Environ. Sci. Technol. 2012, 46, 6297-6305
-
(2012)
Environ. Sci. Technol.
, vol.46
, pp. 6297-6305
-
-
Pasquini, L.M.1
Hashmi, S.M.2
Sommer, T.J.3
Elimelech, M.4
Zimmerman, J.B.5
-
16
-
-
77957325055
-
Electronic-Structure-Dependent Bacterial Cytotoxicity of Single-Walled Carbon Nanotubes
-
Vecitis, C. D.; Zodrow, K. R.; Kang, S.; Elimelech, M. Electronic-Structure-Dependent Bacterial Cytotoxicity of Single-Walled Carbon Nanotubes ACS Nano 2010, 4, 5471-5479
-
(2010)
ACS Nano
, vol.4
, pp. 5471-5479
-
-
Vecitis, C.D.1
Zodrow, K.R.2
Kang, S.3
Elimelech, M.4
-
17
-
-
84855778739
-
Characterizing Carbon Nanotube Samples with Resonance Raman Scattering
-
Jorio, A.; Pimenta, M. A.; Souza Filho, A. G.; Saito, R.; Dresselhaus, G.; Dresselhaus, M. S. Characterizing Carbon Nanotube Samples with Resonance Raman Scattering New J Phys. 2003, 3, 139.1-139.17
-
(2003)
New J Phys.
, vol.3
, pp. 1391-139117
-
-
Jorio, A.1
Pimenta, M.A.2
Souza Filho, A.G.3
Saito, R.4
Dresselhaus, G.5
Dresselhaus, M.S.6
-
18
-
-
14644407524
-
Raman Spectroscopy of Carbon Nanotubes
-
Dresselhaus, M. S.; Dresselhaus, G.; Saito, R.; Jorio, A. Raman Spectroscopy of Carbon Nanotubes Phys. Rep. 2005, 409, 47-99
-
(2005)
Phys. Rep.
, vol.409
, pp. 47-99
-
-
Dresselhaus, M.S.1
Dresselhaus, G.2
Saito, R.3
Jorio, A.4
-
19
-
-
8744271354
-
Determination of Nanotubes Properties by Raman Spectroscopy
-
Jorio, A.; Saito, R.; Dresselhaus, G.; Dresselhaus, M. S. Determination of Nanotubes Properties by Raman Spectroscopy Phil. Trans. R. Soc., A 2004, 362, 2311-2336
-
(2004)
Phil. Trans. R. Soc., A
, vol.362
, pp. 2311-2336
-
-
Jorio, A.1
Saito, R.2
Dresselhaus, G.3
Dresselhaus, M.S.4
-
20
-
-
38049032072
-
Nanotube-Assisted Protein Deactivation
-
Joshi, A.; Punyani, S.; Bale, S. S.; Yang, H.; Borca-Tasciuc, T.; Kane, R. S. Nanotube-Assisted Protein Deactivation Nat. Nanotechnol. 2008, 3, 41-45
-
(2008)
Nat. Nanotechnol.
, vol.3
, pp. 41-45
-
-
Joshi, A.1
Punyani, S.2
Bale, S.S.3
Yang, H.4
Borca-Tasciuc, T.5
Kane, R.S.6
-
21
-
-
77956153879
-
Photoreactivity of Carboxylated Single-Walled Carbon Nanotubes in Sunlight: Reactive Oxygen Species Production in Water
-
Chen, C. Y.; Jafvert, C. T. Photoreactivity of Carboxylated Single-Walled Carbon Nanotubes in Sunlight: Reactive Oxygen Species Production in Water Environ. Sci. Technol. 2010, 44, 6674-6679
-
(2010)
Environ. Sci. Technol.
, vol.44
, pp. 6674-6679
-
-
Chen, C.Y.1
Jafvert, C.T.2
-
22
-
-
84857033281
-
The Role of Surface Functionalization in the Solar Light-Induced Production of Reactive Oxygen Species by Single-Walled Carbon Nanotubes in Water
-
Chen, C. Y.; Jafvert, C. T. The Role of Surface Functionalization in the Solar Light-Induced Production of Reactive Oxygen Species by Single-Walled Carbon Nanotubes in Water Carbon 2011, 49, 5099-5106
-
(2011)
Carbon
, vol.49
, pp. 5099-5106
-
-
Chen, C.Y.1
Jafvert, C.T.2
-
23
-
-
31144447841
-
Antimicrobial Properties of Tannins
-
Scalbert, A. Antimicrobial Properties of Tannins Phytochemistry 1991, 30, 3875-3883
-
(1991)
Phytochemistry
, vol.30
, pp. 3875-3883
-
-
Scalbert, A.1
-
24
-
-
34548764911
-
Enhanced Radical Scavenging Activity by Antioxidant-Functionalized Gold Nanoparticles: A Novel Inspiration for Development of New Artificial Antioxidants
-
Nie, Z.; Liu, K. J.; Zhong, C.-J.; Wang, L.-F.; Yang, Y.; Tian, Q.; Liu, Y. Enhanced Radical Scavenging Activity by Antioxidant-Functionalized Gold Nanoparticles: A Novel Inspiration for Development of New Artificial Antioxidants Free Radic. Biol. Med. 2007, 43, 1243-1254
-
(2007)
Free Radic. Biol. Med.
, vol.43
, pp. 1243-1254
-
-
Nie, Z.1
Liu, K.J.2
Zhong, C.-J.3
Wang, L.-F.4
Yang, Y.5
Tian, Q.6
Liu, Y.7
-
26
-
-
0035584857
-
Reactive Oxygen Species, Antioxidants, and the Mammalian Thioredoxin System
-
Nordberg, J.; Arnér, E. S. Reactive Oxygen Species, Antioxidants, and the Mammalian Thioredoxin System Free Radic. Biol. Med. 2001, 31, 1287-1312
-
(2001)
Free Radic. Biol. Med.
, vol.31
, pp. 1287-1312
-
-
Nordberg, J.1
Arnér, E.S.2
-
27
-
-
0001795394
-
Lipid Peroxidation: Mechansim and Biological Significance
-
In; Aruoma, O. I. Halliwell, B. Taylor & Francis: London
-
Kappus, H. Lipid Peroxidation: Mechansim and Biological Significance. In Free Radicals and Food Additives; Aruoma, O. I.; Halliwell, B., Eds.; Taylor & Francis: London, 1991; pp 59-75.
-
(1991)
Free Radicals and Food Additives
, pp. 59-75
-
-
Kappus, H.1
-
28
-
-
80053318851
-
Antibacterial Activity of Graphite, Graphite Oxide, Graphene Oxide, and Reduced Graphene Oxide: Membrane and Oxidative Stress
-
Liu, S.; Zeng, T. H.; Hofmann, M.; Burcombe, E.; Wei, J.; Jiang, R.; Kong, J.; Chen, Y. Antibacterial Activity of Graphite, Graphite Oxide, Graphene Oxide, and Reduced Graphene Oxide: Membrane and Oxidative Stress ACS Nano 2011, 5, 6971-6980
-
(2011)
ACS Nano
, vol.5
, pp. 6971-6980
-
-
Liu, S.1
Zeng, T.H.2
Hofmann, M.3
Burcombe, E.4
Wei, J.5
Jiang, R.6
Kong, J.7
Chen, Y.8
-
29
-
-
84862884659
-
Mechanism of Photogenerated Reactive Oxygen Species and Correlation with the Antibacterial Properties of Engineered Metal-Oxide Nanoparticles
-
Li, Y.; Zhang, W.; Niu, J.; Chen, Y. Mechanism of Photogenerated Reactive Oxygen Species and Correlation with the Antibacterial Properties of Engineered Metal-Oxide Nanoparticles ACS Nano 2012, 6, 5164-5173
-
(2012)
ACS Nano
, vol.6
, pp. 5164-5173
-
-
Li, Y.1
Zhang, W.2
Niu, J.3
Chen, Y.4
-
30
-
-
84868349341
-
Understanding the Antibacterial Mechanism of CuO Nanoparticles: Revealing the Route of Induced Oxidative Stress
-
Applerot, G.; Lellouche, J.; Lipovsky, A.; Nitzan, Y.; Lubart, R.; Gedanken, A.; Banin, E. Understanding the Antibacterial Mechanism of CuO Nanoparticles: Revealing the Route of Induced Oxidative Stress Small 2012, 8, 3326-37
-
(2012)
Small
, vol.8
, pp. 3326-3337
-
-
Applerot, G.1
Lellouche, J.2
Lipovsky, A.3
Nitzan, Y.4
Lubart, R.5
Gedanken, A.6
Banin, E.7
-
31
-
-
49749101670
-
Tannic Acid Absorption and Its Role for Stabilizing Carbon Nanotube Suspensions
-
Lin, D.; Xing, B. Tannic Acid Absorption and Its Role for Stabilizing Carbon Nanotube Suspensions Environ. Sci. Technol. 2008, 42, 5917-5923
-
(2008)
Environ. Sci. Technol.
, vol.42
, pp. 5917-5923
-
-
Lin, D.1
Xing, B.2
-
32
-
-
0018384650
-
Assay for Lipid Peroxides in Animal Tissues by Thiobarbituric Acid Reaction
-
Ohkawa, H.; Ohishi, N.; Yagi, K. Assay for Lipid Peroxides in Animal Tissues by Thiobarbituric Acid Reaction Anal. Biochem. 1979, 95, 351-358
-
(1979)
Anal. Biochem.
, vol.95
, pp. 351-358
-
-
Ohkawa, H.1
Ohishi, N.2
Yagi, K.3
-
33
-
-
77952877794
-
Multi wall Carbon Nanotubes Induce Oxidative Stress and Cytotoxicity in Human Embryonic Kidney (HEK293) Cells
-
Reddy, A. R.; Reddy, Y. N.; Krishna, D. R.; Himabindu, V. Multi wall Carbon Nanotubes Induce Oxidative Stress and Cytotoxicity in Human Embryonic Kidney (HEK293) Cells Toxicology 2010, 272, 11-16
-
(2010)
Toxicology
, vol.272
, pp. 11-16
-
-
Reddy, A.R.1
Reddy, Y.N.2
Krishna, D.R.3
Himabindu, V.4
|