-
1
-
-
0021056966
-
Phototherapy of tumors
-
[1] Bown, S.G., Phototherapy of tumors. World J. Surg. 7 (1983), 700–709.
-
(1983)
World J. Surg.
, vol.7
, pp. 700-709
-
-
Bown, S.G.1
-
2
-
-
0020770591
-
Gan To Kagaku Ryoho. Laser and cancer therapy
-
[2] Hayata, Y., Kato, H., Gan To Kagaku Ryoho. Laser and cancer therapy. Cancer Chemother. 10 (1983), 1387–1394.
-
(1983)
Cancer Chemother.
, vol.10
, pp. 1387-1394
-
-
Hayata, Y.1
Kato, H.2
-
3
-
-
0031663471
-
Influence of a mindfulness meditation-based stress reduction intervention on rates of skin clearing in patients with moderate to severe psoriasis undergoing photo therapy (UVB) and photochemotherapy (PUVA)
-
[3] Kabat-Zinn, J., Wheeler, E., Light, T., Skillings, A., Scharf, M.J., Cropley, T.G., et al. Influence of a mindfulness meditation-based stress reduction intervention on rates of skin clearing in patients with moderate to severe psoriasis undergoing photo therapy (UVB) and photochemotherapy (PUVA). Psychosom. Med. 60 (1998), 625–632.
-
(1998)
Psychosom. Med.
, vol.60
, pp. 625-632
-
-
Kabat-Zinn, J.1
Wheeler, E.2
Light, T.3
Skillings, A.4
Scharf, M.J.5
Cropley, T.G.6
-
4
-
-
0019823844
-
Action spectrum for phototherapy of psoriasis
-
[4] Parrish, J.A., Jaenicke, K.F., Action spectrum for phototherapy of psoriasis. J. Investig. Dermatol. 76 (1981), 359–362.
-
(1981)
J. Investig. Dermatol.
, vol.76
, pp. 359-362
-
-
Parrish, J.A.1
Jaenicke, K.F.2
-
5
-
-
34547600314
-
Near-infrared resonant nanoshells for combined optical imaging and photothermal cancer therapy
-
[5] Gobin, A.M., Lee, M.H., Halas, N.J., James, W.D., Drezek, R.A., West, J.L., Near-infrared resonant nanoshells for combined optical imaging and photothermal cancer therapy. Nano Lett. 7 (2007), 1929–1934.
-
(2007)
Nano Lett.
, vol.7
, pp. 1929-1934
-
-
Gobin, A.M.1
Lee, M.H.2
Halas, N.J.3
James, W.D.4
Drezek, R.A.5
West, J.L.6
-
6
-
-
18144410597
-
Immunotargeted nanoshells for integrated cancer imaging and therapy
-
[6] Loo, C., Lowery, A., Halas, N., West, J., Drezek, R., Immunotargeted nanoshells for integrated cancer imaging and therapy. Nano Lett. 5 (2005), 709–711.
-
(2005)
Nano Lett.
, vol.5
, pp. 709-711
-
-
Loo, C.1
Lowery, A.2
Halas, N.3
West, J.4
Drezek, R.5
-
7
-
-
33244457595
-
Cancer cell imaging and photothermal therapy in the near-infrared region by using gold nanorods
-
[7] Huang, X., El-Sayed, I.H., Qian, W., El-Sayed, M.A., Cancer cell imaging and photothermal therapy in the near-infrared region by using gold nanorods. J. Am. Chem. Soc. 128 (2006), 2115–2120.
-
(2006)
J. Am. Chem. Soc.
, vol.128
, pp. 2115-2120
-
-
Huang, X.1
El-Sayed, I.H.2
Qian, W.3
El-Sayed, M.A.4
-
8
-
-
11944260641
-
Photosensitizers of the porphyrin and phthalocyanine series for photodynamic therapy
-
[8] Bonnett, R., Photosensitizers of the porphyrin and phthalocyanine series for photodynamic therapy. Chem. Soc. Rev. 24 (1995), 19–33.
-
(1995)
Chem. Soc. Rev.
, vol.24
, pp. 19-33
-
-
Bonnett, R.1
-
9
-
-
0032540701
-
Photodynamic therapy
-
[9] Dougherty, T.J., Gomer, C.J., Henderson, B.W., Jori, G., Kessel, D., Korbelik, M., et al. Photodynamic therapy. J. Natl. Cancer Inst. 90 (1998), 889–905.
-
(1998)
J. Natl. Cancer Inst.
, vol.90
, pp. 889-905
-
-
Dougherty, T.J.1
Gomer, C.J.2
Henderson, B.W.3
Jori, G.4
Kessel, D.5
Korbelik, M.6
-
10
-
-
0037711396
-
Photodynamic therapy for cancer
-
[10] Dolmans, D.E.J.G.J., Fukumura, D., Jain, R.K., Photodynamic therapy for cancer. Nat. Rev. Cancer 3 (2003), 380–387.
-
(2003)
Nat. Rev. Cancer
, vol.3
, pp. 380-387
-
-
Dolmans, D.E.J.G.J.1
Fukumura, D.2
Jain, R.K.3
-
11
-
-
84866715410
-
Hypocrellin-loaded gold nanocages with high two-photon efficiency for photothermal/photodynamic cancer therapy in vitro
-
[11] Gao, L., Fei, J., Zhao, J., Li, H., Cui, Y., Li, J., Hypocrellin-loaded gold nanocages with high two-photon efficiency for photothermal/photodynamic cancer therapy in vitro. ACS Nano 6 (2012), 8030–8040.
-
(2012)
ACS Nano
, vol.6
, pp. 8030-8040
-
-
Gao, L.1
Fei, J.2
Zhao, J.3
Li, H.4
Cui, Y.5
Li, J.6
-
12
-
-
3042823524
-
Combined photodynamic and photothermal induced injury enhances damage to in vivo model blood vessels
-
[12] Kelly, K.M., Kimel, S., Smith, T., Stacy, A., Hammer-Wilson, M.J., Svaasand, L.O., et al. Combined photodynamic and photothermal induced injury enhances damage to in vivo model blood vessels. Lasers Surg. Med. 34 (2004), 407–413.
-
(2004)
Lasers Surg. Med.
, vol.34
, pp. 407-413
-
-
Kelly, K.M.1
Kimel, S.2
Smith, T.3
Stacy, A.4
Hammer-Wilson, M.J.5
Svaasand, L.O.6
-
13
-
-
53249144150
-
Combinatorial treatment of photothermal therapy using gold nanoshells with conventional photodynamic therapy to improve treatment efficacy: an in vitro study
-
[13] Kah, J.C.Y., Wan, R.C.Y., Wong, K.Y., Mhaisalkar, S., Sheppard, C.J.R., Olivo, M., Combinatorial treatment of photothermal therapy using gold nanoshells with conventional photodynamic therapy to improve treatment efficacy: an in vitro study. Lasers Surg. Med. 40 (2008), 584–589.
-
(2008)
Lasers Surg. Med.
, vol.40
, pp. 584-589
-
-
Kah, J.C.Y.1
Wan, R.C.Y.2
Wong, K.Y.3
Mhaisalkar, S.4
Sheppard, C.J.R.5
Olivo, M.6
-
14
-
-
84862787594
-
Gold nanomaterials conjugated with indocyanine green for dual-modality photodynamic and photothermal therapy
-
[14] Kuo, W.-S., Chang, Y.-T., Cho, K.-C., Chiu, K.-C., Lien, C.-H., Yeh, C.-S., et al. Gold nanomaterials conjugated with indocyanine green for dual-modality photodynamic and photothermal therapy. Biomaterials 33 (2012), 3270–3278.
-
(2012)
Biomaterials
, vol.33
, pp. 3270-3278
-
-
Kuo, W.-S.1
Chang, Y.-T.2
Cho, K.-C.3
Chiu, K.-C.4
Lien, C.-H.5
Yeh, C.-S.6
-
15
-
-
79951879265
-
Gold nanorod−photosensitizer complex for near-infrared fluorescence imaging and photodynamic/photothermal therapy in vivo
-
[15] Jang, B., Park, J.-Y., Tung, C.-H., Kim, I.-H., Choi, Y., Gold nanorod−photosensitizer complex for near-infrared fluorescence imaging and photodynamic/photothermal therapy in vivo. ACS Nano 5 (2011), 1086–1094.
-
(2011)
ACS Nano
, vol.5
, pp. 1086-1094
-
-
Jang, B.1
Park, J.-Y.2
Tung, C.-H.3
Kim, I.-H.4
Choi, Y.5
-
16
-
-
78751522990
-
Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging
-
[16] Kuo, W.-S., Chang, C.-N., Chang, Y.-T., Yang, M.-H., Chien, Y.-H., Chen, S.-J., et al. Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging. Angew. Chem. 122 (2010), 2771–2775.
-
(2010)
Angew. Chem.
, vol.122
, pp. 2771-2775
-
-
Kuo, W.-S.1
Chang, C.-N.2
Chang, Y.-T.3
Yang, M.-H.4
Chien, Y.-H.5
Chen, S.-J.6
-
17
-
-
84879638540
-
Photosensitizer-loaded gold vesicles with strong plasmonic coupling effect for imaging-guided photothermal/photodynamic therapy
-
[17] Lin, J., Wang, S., Huang, P., Wang, Z., Chen, S., Niu, G., et al. Photosensitizer-loaded gold vesicles with strong plasmonic coupling effect for imaging-guided photothermal/photodynamic therapy. ACS Nano 7 (2013), 5320–5329.
-
(2013)
ACS Nano
, vol.7
, pp. 5320-5329
-
-
Lin, J.1
Wang, S.2
Huang, P.3
Wang, Z.4
Chen, S.5
Niu, G.6
-
18
-
-
84878839404
-
Single continuous wave laser induced photodynamic/plasmonic photothermal therapy using photosensitizer-functionalized gold nanostars
-
[18] Wang, S., Huang, P., Nie, L., Xing, R., Liu, D., Wang, Z., et al. Single continuous wave laser induced photodynamic/plasmonic photothermal therapy using photosensitizer-functionalized gold nanostars. Adv. Mater. 25 (2013), 3055–3061.
-
(2013)
Adv. Mater.
, vol.25
, pp. 3055-3061
-
-
Wang, S.1
Huang, P.2
Nie, L.3
Xing, R.4
Liu, D.5
Wang, Z.6
-
19
-
-
84868114071
-
Photodynamic and photothermal effects of semiconducting and metallic-enriched single-walled carbon nanotubes
-
[19] Murakami, T., Nakatsuji, H., Inada, M., Matoba, Y., Umeyama, T., Tsujimoto, M., et al. Photodynamic and photothermal effects of semiconducting and metallic-enriched single-walled carbon nanotubes. J. Am. Chem. Soc. 134 (2012), 17862–17865.
-
(2012)
J. Am. Chem. Soc.
, vol.134
, pp. 17862-17865
-
-
Murakami, T.1
Nakatsuji, H.2
Inada, M.3
Matoba, Y.4
Umeyama, T.5
Tsujimoto, M.6
-
20
-
-
84878662647
-
Graphene oxide mediated delivery of methylene blue for combined photodynamic and photothermal therapy
-
[20] Sahu, A., Choi, W.I., Lee, J.H., Tae, G., Graphene oxide mediated delivery of methylene blue for combined photodynamic and photothermal therapy. Biomaterials 34 (2013), 6239–6248.
-
(2013)
Biomaterials
, vol.34
, pp. 6239-6248
-
-
Sahu, A.1
Choi, W.I.2
Lee, J.H.3
Tae, G.4
-
21
-
-
80053316272
-
Photothermally enhanced photodynamic therapy delivered by nano-graphene oxide
-
[21] Tian, B., Wang, C., Zhang, S., Feng, L., Liu, Z., Photothermally enhanced photodynamic therapy delivered by nano-graphene oxide. ACS Nano 5 (2011), 7000–7009.
-
(2011)
ACS Nano
, vol.5
, pp. 7000-7009
-
-
Tian, B.1
Wang, C.2
Zhang, S.3
Feng, L.4
Liu, Z.5
-
22
-
-
84881023430
-
Hollow silica nanoparticles loaded with hydrophobic phthalocyanine for near-infrared photodynamic and photothermal combination therapy
-
[22] Peng, J., Zhao, L., Zhu, X., Sun, Y., Feng, W., Gao, Y., et al. Hollow silica nanoparticles loaded with hydrophobic phthalocyanine for near-infrared photodynamic and photothermal combination therapy. Biomaterials 34 (2013), 7905–7912.
-
(2013)
Biomaterials
, vol.34
, pp. 7905-7912
-
-
Peng, J.1
Zhao, L.2
Zhu, X.3
Sun, Y.4
Feng, W.5
Gao, Y.6
-
23
-
-
80053315535
-
Nanocomposites containing silica-coated gold–silver nanocages and Yb–2,4-dimethoxyhematoporphyrin: multifunctional capability of IR-luminescence detection, photosensitization, and photothermolysis
-
[23] Khlebtsov, B., Panfilova, E., Khanadeev, V., Bibikova, O., Terentyuk, G., Ivanov, A., et al. Nanocomposites containing silica-coated gold–silver nanocages and Yb–2,4-dimethoxyhematoporphyrin: multifunctional capability of IR-luminescence detection, photosensitization, and photothermolysis. ACS Nano 5 (2011), 7077–7089.
-
(2011)
ACS Nano
, vol.5
, pp. 7077-7089
-
-
Khlebtsov, B.1
Panfilova, E.2
Khanadeev, V.3
Bibikova, O.4
Terentyuk, G.5
Ivanov, A.6
-
24
-
-
0023003249
-
Thermographic assessment of bone and joint disease
-
[24] Rothschild, B.M., Thermographic assessment of bone and joint disease. Orthop. Rev. 15 (1986), 765–780.
-
(1986)
Orthop. Rev.
, vol.15
, pp. 765-780
-
-
Rothschild, B.M.1
-
25
-
-
84857855100
-
Infrared thermal imaging in medicine
-
[25] Ring, E.F., Ammer, K., Infrared thermal imaging in medicine. Physiol. Meas. 33 (2012), R33–R46.
-
(2012)
Physiol. Meas.
, vol.33
, pp. R33-R46
-
-
Ring, E.F.1
Ammer, K.2
-
26
-
-
84862180341
-
Medical applications of infrared thermography: a review
-
[26] Lahiri, B.B., Bagavathiappan, S., Jayakumar, T., Philip, J., Medical applications of infrared thermography: a review. Infrared Phys. Technol. 55 (2012), 221–235.
-
(2012)
Infrared Phys. Technol.
, vol.55
, pp. 221-235
-
-
Lahiri, B.B.1
Bagavathiappan, S.2
Jayakumar, T.3
Philip, J.4
-
27
-
-
0014750789
-
Clinical studies in thermography. II. Application of thermography in evaluating musculoligamentous injuries of the spine–a preliminary report
-
[27] Karpman, H.L., Knebel, A., Semel, C.J., Cooper, J., Clinical studies in thermography. II. Application of thermography in evaluating musculoligamentous injuries of the spine–a preliminary report. Arch. Environ. Health 20 (1970), 412–417.
-
(1970)
Arch. Environ. Health
, vol.20
, pp. 412-417
-
-
Karpman, H.L.1
Knebel, A.2
Semel, C.J.3
Cooper, J.4
-
28
-
-
84863337933
-
Photoacoustic tomography: in vivo imaging from organelles to organs
-
[28] Wang, L.V., Hu, S., Photoacoustic tomography: in vivo imaging from organelles to organs. Science 335 (2012), 1458–1462.
-
(2012)
Science
, vol.335
, pp. 1458-1462
-
-
Wang, L.V.1
Hu, S.2
-
29
-
-
82255190668
-
Biomedical photoacoustic imaging
-
[29] Beard, P., Biomedical photoacoustic imaging. Interface Focus 1 (2011), 602–631.
-
(2011)
Interface Focus
, vol.1
, pp. 602-631
-
-
Beard, P.1
-
30
-
-
33646434247
-
Photoacoustic imaging in biomedicine
-
[30] Xu, M., Wang, L.V., Photoacoustic imaging in biomedicine. Revi Sci. Instrum. 77 (2006), 041101–041122.
-
(2006)
Revi Sci. Instrum.
, vol.77
, pp. 041101-041122
-
-
Xu, M.1
Wang, L.V.2
-
31
-
-
0038391518
-
Noninvasive laser-induced photoacoustic tomography for structural and functional in vivo imaging of the brain
-
[31] Wang, X., Pang, Y., Ku, G., Xie, X., Stoica, G., Wang, L.V., Noninvasive laser-induced photoacoustic tomography for structural and functional in vivo imaging of the brain. Nat. Biotechnol. 21 (2003), 803–806.
-
(2003)
Nat. Biotechnol.
, vol.21
, pp. 803-806
-
-
Wang, X.1
Pang, Y.2
Ku, G.3
Xie, X.4
Stoica, G.5
Wang, L.V.6
-
32
-
-
84873133840
-
4-D Photoacoustic tomography
-
[32] Xiang, L., Wang, B., Ji, L., Jiang, H., 4-D Photoacoustic tomography. Sci. Rep. 3 (2013), 1113–1120.
-
(2013)
Sci. Rep.
, vol.3
, pp. 1113-1120
-
-
Xiang, L.1
Wang, B.2
Ji, L.3
Jiang, H.4
-
33
-
-
84856689512
-
Biomedical photoacoustics beyond thermal expansion using triggered nanodroplet vaporization for contrast-enhanced imaging
-
[33] Wilson, K., Homan, K., Emelianov, S., Biomedical photoacoustics beyond thermal expansion using triggered nanodroplet vaporization for contrast-enhanced imaging. Nat. Commun. 3 (2012), 618–627.
-
(2012)
Nat. Commun.
, vol.3
, pp. 618-627
-
-
Wilson, K.1
Homan, K.2
Emelianov, S.3
-
34
-
-
51349160000
-
Carbon nanotubes as photoacoustic molecular imaging agents in living mice
-
[34] De La Zerda, A., Zavaleta, C., Keren, S., Vaithilingam, S., Bodapati, S., Liu, Z., et al. Carbon nanotubes as photoacoustic molecular imaging agents in living mice. Nat. Nanothechnol. 3 (2008), 557–562.
-
(2008)
Nat. Nanothechnol.
, vol.3
, pp. 557-562
-
-
De La Zerda, A.1
Zavaleta, C.2
Keren, S.3
Vaithilingam, S.4
Bodapati, S.5
Liu, Z.6
-
35
-
-
84906783536
-
Upconversion nanoparticles as a contrast agent for photoacoustic imaging in live mice
-
[35] Maji, S.K., Sreejith, S., Joseph, J., Lin, M., He, T., Tong, Y., et al. Upconversion nanoparticles as a contrast agent for photoacoustic imaging in live mice. Adv. Mater. 26 (2014), 5633–5638.
-
(2014)
Adv. Mater.
, vol.26
, pp. 5633-5638
-
-
Maji, S.K.1
Sreejith, S.2
Joseph, J.3
Lin, M.4
He, T.5
Tong, Y.6
-
36
-
-
84978881489
-
Reflection-mode subwavelength-resolution photoacoustic microscopy for label-freemicrovascular imaging in vivo
-
paper BrT2B.4, ISBN: 978-1-55752-954-1
-
[36] Song, W., Zheng, W., Xu, Q., Lin, R., Gong, X., Song, L., Reflection-mode subwavelength-resolution photoacoustic microscopy for label-freemicrovascular imaging in vivo. Opt. life Sci. OSA Tech. Dig. (online) Opt. Soc. Am., 2015 paper BrT2B.4, ISBN: 978-1-55752-954-1.
-
(2015)
Opt. life Sci. OSA Tech. Dig. (online) Opt. Soc. Am.
-
-
Song, W.1
Zheng, W.2
Xu, Q.3
Lin, R.4
Gong, X.5
Song, L.6
-
37
-
-
84928926510
-
High-speed label-free functional photoacoustic microscopy of mouse brain in action
-
[37] Yao, J., Wang, L., Yang, J.-M., Maslov, K.I., Wong, T.T.W., Li, L., et al. High-speed label-free functional photoacoustic microscopy of mouse brain in action. Nat. Methods 12 (2015), 407–410.
-
(2015)
Nat. Methods
, vol.12
, pp. 407-410
-
-
Yao, J.1
Wang, L.2
Yang, J.-M.3
Maslov, K.I.4
Wong, T.T.W.5
Li, L.6
-
38
-
-
84875801885
-
Properties of disorder-engineered black titanium dioxide nanoparticles through hydrogenation
-
[38] Chen, X., Liu, L., Liu, Z., Marcus, M.A., Wang, W.C., Oyler, N.A., et al. Properties of disorder-engineered black titanium dioxide nanoparticles through hydrogenation. Sci. Rep. 3 (2013), 1–7.
-
(2013)
Sci. Rep.
, vol.3
, pp. 1-7
-
-
Chen, X.1
Liu, L.2
Liu, Z.3
Marcus, M.A.4
Wang, W.C.5
Oyler, N.A.6
-
39
-
-
79951513799
-
Increasing solar absorption for photocatalysis with black hydrogenated titanium dioxide nanocrystals
-
[39] Chen, X., Liu, L., Yu, P.Y., Mao, S.S., Increasing solar absorption for photocatalysis with black hydrogenated titanium dioxide nanocrystals. Science 331 (2011), 746–750.
-
(2011)
Science
, vol.331
, pp. 746-750
-
-
Chen, X.1
Liu, L.2
Yu, P.Y.3
Mao, S.S.4
-
40
-
-
84897645035
-
Effective nonmetal incorporation in black titania with enhanced solar energy utilization
-
[40] Lin, T., Yang, C., Wang, Z., Yin, H., Lu, X., Huang, F., et al. Effective nonmetal incorporation in black titania with enhanced solar energy utilization. Energy Environ. Sci. 7 (2014), 967–972.
-
(2014)
Energy Environ. Sci.
, vol.7
, pp. 967-972
-
-
Lin, T.1
Yang, C.2
Wang, Z.3
Yin, H.4
Lu, X.5
Huang, F.6
-
41
-
-
84889254665
-
Core-shell nanostructured “black” rutile titania as excellent catalyst for hydrogen production enhanced by sulfur doping
-
[41] Yang, C., Wang, Z., Lin, T., Yin, H., Lü, X., Wan, D., et al. Core-shell nanostructured “black” rutile titania as excellent catalyst for hydrogen production enhanced by sulfur doping. J. Am. Chem. Soc. 135 (2013), 17831–17838.
-
(2013)
J. Am. Chem. Soc.
, vol.135
, pp. 17831-17838
-
-
Yang, C.1
Wang, Z.2
Lin, T.3
Yin, H.4
Lü, X.5
Wan, D.6
-
42
-
-
84884573529
-
Visible-light photocatalytic, solar thermal and photoelectrochemical properties of aluminium-reduced black titania
-
[42] Wang, Z., Yang, C., Lin, T., Yin, H., Chen, P., Wan, D., et al. Visible-light photocatalytic, solar thermal and photoelectrochemical properties of aluminium-reduced black titania. Energy Environ. Sci. 6 (2013), 3007–3014.
-
(2013)
Energy Environ. Sci.
, vol.6
, pp. 3007-3014
-
-
Wang, Z.1
Yang, C.2
Lin, T.3
Yin, H.4
Chen, P.5
Wan, D.6
-
43
-
-
84947983392
-
2 for cancer photothermal therapy
-
2 for cancer photothermal therapy. Adv. Healthc. Mater., 4(10), 2015.
-
(2015)
Adv. Healthc. Mater.
, vol.4
, Issue.10
-
-
Ren, W.1
Yan, Y.2
Zeng, L.3
Shi, Z.4
Gong, A.5
Schaaf, P.6
-
49
-
-
84899672648
-
2 and ZnO nanoparticles as photosensitizers in photodynamic therapy for cancer
-
2 and ZnO nanoparticles as photosensitizers in photodynamic therapy for cancer. J. Biomed. Nanotechnol. 10 (2014), 1450–1457.
-
(2014)
J. Biomed. Nanotechnol.
, vol.10
, pp. 1450-1457
-
-
Zhang, H.1
Shan, Y.2
Dong, L.3
-
51
-
-
84887840804
-
H-doped black titania with very high solar absorption and excellent photocatalysis enhanced by localized surface plasmon resonance
-
[51] Wang, Z., Yang, C., Lin, T., Yin, H., Chen, P., Wan, D., et al. H-doped black titania with very high solar absorption and excellent photocatalysis enhanced by localized surface plasmon resonance. Adv. Funct. Mater. 23 (2013), 5444–5450.
-
(2013)
Adv. Funct. Mater.
, vol.23
, pp. 5444-5450
-
-
Wang, Z.1
Yang, C.2
Lin, T.3
Yin, H.4
Chen, P.5
Wan, D.6
-
52
-
-
84893877117
-
Noble-metal-free plasmonic photocatalyst: hydrogen doped semiconductors
-
[52] Ma, X., Dai, Y., Yu, L., Huang, B., Noble-metal-free plasmonic photocatalyst: hydrogen doped semiconductors. Sci. Rep. 4 (2014), 3986–3993.
-
(2014)
Sci. Rep.
, vol.4
, pp. 3986-3993
-
-
Ma, X.1
Dai, Y.2
Yu, L.3
Huang, B.4
-
54
-
-
0033747389
-
Multiphoton microscopy in life sciences
-
[54] König, K., Multiphoton microscopy in life sciences. J. Microsc. 200 (2000), 83–104.
-
(2000)
J. Microsc.
, vol.200
, pp. 83-104
-
-
König, K.1
-
55
-
-
0032876726
-
Detection of superoxide anion radical in phospholipid liposomal membrane by fluorescence quenching method using 1,3-diphenylisobenzofuran
-
[55] Ohyashiki, T., Nunomura, M., Katoh, T., Detection of superoxide anion radical in phospholipid liposomal membrane by fluorescence quenching method using 1,3-diphenylisobenzofuran. Biochim. Biophys. Acta (BBA)-Biomembr. 1421 (1999), 131–139.
-
(1999)
Biochim. Biophys. Acta (BBA)-Biomembr.
, vol.1421
, pp. 131-139
-
-
Ohyashiki, T.1
Nunomura, M.2
Katoh, T.3
-
56
-
-
79958085195
-
On the use of 1,3-diphenylisobenzofuran (DPBF). Reactions with carbon and oxygen centered radicals in model and natural systems
-
[56] Carloni, P., Damiani, E., Greci, L., Stipa, P., Tanfani, F., Tartaglini, E., et al. On the use of 1,3-diphenylisobenzofuran (DPBF). Reactions with carbon and oxygen centered radicals in model and natural systems. Res. Chem. Intermed. 19 (1993), 395–405.
-
(1993)
Res. Chem. Intermed.
, vol.19
, pp. 395-405
-
-
Carloni, P.1
Damiani, E.2
Greci, L.3
Stipa, P.4
Tanfani, F.5
Tartaglini, E.6
-
57
-
-
84864758529
-
Aluminum phthalocyanine and gold nanorod conjugates: the combination of photodynamic therapy and photothermal therapy to kill cancer cells
-
[57] Wang, J., Tang, H.Y., Yang, W.L., Chen, J.Y., Aluminum phthalocyanine and gold nanorod conjugates: the combination of photodynamic therapy and photothermal therapy to kill cancer cells. J. Porphyr. Phthalocyanines 16 (2012), 802–808.
-
(2012)
J. Porphyr. Phthalocyanines
, vol.16
, pp. 802-808
-
-
Wang, J.1
Tang, H.Y.2
Yang, W.L.3
Chen, J.Y.4
-
58
-
-
0000301134
-
Singlet oxygen quantum yields of different photosensitizers in polar solvents and micellar solutions
-
[58] Spiller, W., Kliesch, H., WÖhrle, D., Hackbarth, S., RÖder, B., Schnurpfeil, G., Singlet oxygen quantum yields of different photosensitizers in polar solvents and micellar solutions. J. Porphyr. Phthalocyanines 02 (1998), 145–158.
-
(1998)
J. Porphyr. Phthalocyanines
, vol.2
, pp. 145-158
-
-
Spiller, W.1
Kliesch, H.2
WÖhrle, D.3
Hackbarth, S.4
RÖder, B.5
Schnurpfeil, G.6
-
59
-
-
79957493747
-
Probing paramagnetic species in titania-based heterogeneous photocatalysis by electron spin resonance (ESR) spectroscopy—a mini review
-
[59] Wang, Z., Ma, W., Chen, C., Ji, H., Zhao, J., Probing paramagnetic species in titania-based heterogeneous photocatalysis by electron spin resonance (ESR) spectroscopy—a mini review. Chem. Eng. J. 170 (2011), 353–362.
-
(2011)
Chem. Eng. J.
, vol.170
, pp. 353-362
-
-
Wang, Z.1
Ma, W.2
Chen, C.3
Ji, H.4
Zhao, J.5
-
60
-
-
0000836928
-
Reduction of dioxygen to superoxide photosensitized by anthraquinone-2-sulphonate
-
[60] Lang, K., Wagnerová, D.M., Stopka, P., Damerau, W., Reduction of dioxygen to superoxide photosensitized by anthraquinone-2-sulphonate. J. Photochem. Photobiol. A 67 (1992), 187–195.
-
(1992)
J. Photochem. Photobiol. A
, vol.67
, pp. 187-195
-
-
Lang, K.1
Wagnerová, D.M.2
Stopka, P.3
Damerau, W.4
-
61
-
-
84899654082
-
HeLa cell line xenograft tumor as a suitable cervical cancer model: growth kinetic characterization and immunohistochemistry array
-
[61] Arjomandnejad, M., Muhammadnejad, A., Haddadi, M., Sherkat-Khameneh, N., Rismanchi, S., Amanpour, S., et al. HeLa cell line xenograft tumor as a suitable cervical cancer model: growth kinetic characterization and immunohistochemistry array. Arch. Iran. Med. 17 (2014), 273–277.
-
(2014)
Arch. Iran. Med.
, vol.17
, pp. 273-277
-
-
Arjomandnejad, M.1
Muhammadnejad, A.2
Haddadi, M.3
Sherkat-Khameneh, N.4
Rismanchi, S.5
Amanpour, S.6
-
62
-
-
84876531628
-
Recent progress in biomedical applications of titanium dioxide
-
[62] Yin, Z.F., Wu, L., Yang, H.G., Su, Y.H., Recent progress in biomedical applications of titanium dioxide. Phys. Chem. Chem. Phys. 15 (2013), 4844–4858.
-
(2013)
Phys. Chem. Chem. Phys.
, vol.15
, pp. 4844-4858
-
-
Yin, Z.F.1
Wu, L.2
Yang, H.G.3
Su, Y.H.4
-
63
-
-
84876113687
-
Titanium dioxide nanoparticles: a review of current toxicological data
-
[63] Shi, H., Magaye, R., Castranova, V., Zhao, J., Titanium dioxide nanoparticles: a review of current toxicological data. Part Fibre Toxicol., 10, 2013, 15.
-
(2013)
Part Fibre Toxicol.
, vol.10
, pp. 15
-
-
Shi, H.1
Magaye, R.2
Castranova, V.3
Zhao, J.4
-
64
-
-
81755171094
-
Titanium dioxide in our everyday life; is it safe?
-
[64] Skocaj, M., Filipic, M., Petkovic, J., Novak, S., Titanium dioxide in our everyday life; is it safe?. Radiol. Oncol. 45 (2011), 227–247.
-
(2011)
Radiol. Oncol.
, vol.45
, pp. 227-247
-
-
Skocaj, M.1
Filipic, M.2
Petkovic, J.3
Novak, S.4
-
65
-
-
76749155429
-
A protein interaction network for the analysis of the neuronal differentiation of neural stem cells in response to titanium dioxide nanoparticles
-
[65] Liu, X., Ren, X., Deng, X., Huo, Y., Xie, J., Huang, H., et al. A protein interaction network for the analysis of the neuronal differentiation of neural stem cells in response to titanium dioxide nanoparticles. Biomaterials 31 (2010), 3063–3070.
-
(2010)
Biomaterials
, vol.31
, pp. 3063-3070
-
-
Liu, X.1
Ren, X.2
Deng, X.3
Huo, Y.4
Xie, J.5
Huang, H.6
-
66
-
-
0029783521
-
Sequencing of combined hyperthermia and photodynamic therapy
-
[66] Chen, Q., Chen, H., Shapiro, H., Hetzel, F.W., Sequencing of combined hyperthermia and photodynamic therapy. Radiat. Res. 146 (1996), 293–297.
-
(1996)
Radiat. Res.
, vol.146
, pp. 293-297
-
-
Chen, Q.1
Chen, H.2
Shapiro, H.3
Hetzel, F.W.4
-
67
-
-
0026133962
-
Temperature effects on photosensitized processes
-
[67] Gottfried, V., Kimel, S., Temperature effects on photosensitized processes. J. Photochem. Photobiol. B 8 (1991), 419–430.
-
(1991)
J. Photochem. Photobiol. B
, vol.8
, pp. 419-430
-
-
Gottfried, V.1
Kimel, S.2
|