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Fabrication of gold nanorods-doped, bovine serum albumin microstructures via multiphoton excited photochemistry |
Optics Express, Vol. 19, Issue 7, pp. 6260-6268 (2011)
http://dx.doi.org/10.1364/OE.19.006260
Acrobat PDF (941 KB)
Abstract
In this study, three-dimensional (3D) crosslinked bovine serum albumin (BSA) microstructures containing gold nanorods (AuNRs) were fabricated via multiphoton excited photochemistry using Rose Bengal (RB) as the photoactivator. To retain AuNRs in the 3D crosslinked BSA microstructures, the laser wavelength was chosen for two-photon RB absorption for improved two-photon crosslinking efficiency, but not for enhancing the longitudinal plasmon resonance of AuNRs which may result in photothermal damage of AuNRs. Furthermore, with two-photon excitation of RB via AuNRs plasmonics, the laser power can be reduced by about 30%. As a result, 3D BSA microstructures containing AuNRs can be successfully fabricated. The AuNRs-doped BSA microstructures can be applied in biomedical scaffolds with plasmonic properties such as two-photon luminescence imaging and photothermal therapy.
© 2011 OSA
1. Introduction
C. R. Lambert, I. E. Kochevar, and R. W. Redmond, “Differential reactivity of upper triplet states produces wavelength-dependent two-photon photosensitization using Rose Bengal,” J. Phys. Chem. B 103(18), 3737–3741 (1999). [CrossRef]
J. D. Pitts, P. J. Campagnola, G. A. Epling, and S. L. Goodman, “Submicron multiphoton free-form fabrication of proteins and polymers: studies of reaction efficiencies and applications in sustained release,” Macromolecules 33(5), 1514–1523 (2000). [CrossRef]
S. Kawata, H. B. Sun, T. Tanaka, and K. Takada, “Finer features for functional microdevices,” Nature 412(6848), 697–698 (2001). [CrossRef] [PubMed]
P. Galajda and P. Ormos, “Complex micromachines produced and driven by light,” Appl. Phys. Lett. 78(2), 249–251 (2001). [CrossRef]
P. Galajda and P. Ormos, “Complex micromachines produced and driven by light,” Appl. Phys. Lett. 78(2), 249–251 (2001). [CrossRef]
S. Kawata, H. B. Sun, T. Tanaka, and K. Takada, “Finer features for functional microdevices,” Nature 412(6848), 697–698 (2001). [CrossRef] [PubMed]
T. Watanabe, M. Akiyama, K. Totani, S. M. Kuebler, F. Stellacci, W. Wenseleers, K. Braun, S. R. Marder, and J. W. Perry, “Photoresponsive hydrogel microstructure fabricated by two-photon initiated Polymerization,” Adv. Funct. Mater. 12(9), 611–614 (2002). [CrossRef]
Z. B. Sun, X. Z. Dong, W. Q. Chen, S. Nakanishi, M. Duan, and S. Kawata, “Multicolor polymer nanocomposites: in situ synthesis and fabrication of 3D microstructures,” Adv. Mater. (Deerfield Beach Fla.) 20(5), 914–919 (2008). [CrossRef]
J. D. Pitts, P. J. Campagnola, G. A. Epling, and S. L. Goodman, “Submicron multiphoton free-form fabrication of proteins and polymers: studies of reaction efficiencies and applications in sustained release,” Macromolecules 33(5), 1514–1523 (2000). [CrossRef]
M. A. Swartz, “Signaling in morphogenesis: transport cues in morphogenesis,” Curr. Opin. Biotechnol. 14(5), 547–550 (2003). [CrossRef] [PubMed]
L. Liaw, M. P. Skinner, E. W. Raines, R. Ross, D. A. Cheresh, S. M. Schwartz, and C. M. Giachelli, “The adhesive and migratory effects of osteopontin are mediated via distinct cell surface integrins. Role of alpha v beta 3 in smooth muscle cell migration to osteopontin in vitro,” J. Clin. Invest. 95(2), 713–724 (1995). [CrossRef] [PubMed]
S. Basu, L. P. Cunningham, G. D. Pins, K. A. Bush, R. Taboada, A. R. Howell, J. Wang, and P. J. Campagnola, “Multi-photon excited fabrication of collagen matrices crosslinked by a modified benzophenone dimer: Bioactivity and enzymatic degradation,” Biomacromolecules 6(3), 1465–1474 (2005). [CrossRef] [PubMed]
G. D. Pins, K. A. Bush, L. P. Cunningham, and P. J. Campagnola, “Multiphoton excited fabricated nano and micropatterned extracellular matrix proteins direct cellular morphology,” J. Biomed. Mater. Res. 78A(1), 194–204 (2006). [CrossRef]
R. T. Hill, J. L. Lyon, R. Allen, K. J. Stevenson, and J. B. Shear, “Microfabrication of three-dimensional bioelectronic architectures,” J. Am. Chem. Soc. 127(30), 10707–10711 (2005). [CrossRef] [PubMed]
W. S. Kuo, C. N. Chang, Y. T. Chang, M. H. Yang, Y. H. Chien, S. J. Chen, and C. S. Yeh, “Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging,” Angew. Chem. Int. Ed. Engl. 49(15), 2711–2715 (2010). [PubMed]
W. S. Kuo, C. M. Wu, Z. S. Yang, S. Y. Chen, C. Y. Chen, C. C. Huang, W. M. Li, C. K. Sun, and C. S. Yeh, “Biocompatible bacteria@Au composites for application in the photothermal destruction of cancer cells,” Chem. Commun. (Camb.) 37(37), 4430–4432 (2008). [CrossRef]
W. S. Kuo, C. N. Chang, Y. T. Chang, and C. S. Yeh, “Antimicrobial gold nanorods with dual-modality photodynamic inactivation and hyperthermia,” Chem. Commun. (Camb.) 32(32), 4853–4855 (2009). [CrossRef]
J. Nappa, G. Revillod, J. P. Abid, I. Russier-Antoine, C. Jonin, E. Benichou, H. H. Girault, and P. F. Brevet, “Hyper-Rayleigh scattering of gold nanorods and their relationship with linear assemblies of gold nanospheres,” Faraday Discuss. 125, 145–156 (2004). [CrossRef] [PubMed]
A. K. Singh, D. Senapati, S. Wang, J. Griffin, A. Neely, P. Candice, K. M. Naylor, B. Varisli, J. R. Kalluri, and P. C. Ray, “Gold nanorod based selective identification of Escherichia coli bacteria using two-photon Rayleigh scattering spectroscopy,” ACS Nano 3(7), 1906–1912 (2009). [CrossRef] [PubMed]
Q. Liao, C. Mu, D. S. Xu, X. C. Ai, J. N. Yao, and J. P. Zhang, “Gold nanorod arrays with good reproducibility for high-performance surface-enhanced Raman scattering,” Langmuir 25(8), 4708–4714 (2009). [CrossRef] [PubMed]
A. L. Oldenburg, M. N. Hansen, D. A. Zweifel, A. Wei, and S. A. Boppart, “Plasmon-resonant gold nanorods as low backscattering albedo contrast agents for optical coherence tomography,” Opt. Express 14(15), 6724–6738 (2006). [CrossRef] [PubMed]
N. J. Durr, T. Larson, D. K. Smith, B. A. Korgel, K. Sokolov, and A. Ben-Yakar, “Two-photon luminescence imaging of cancer cells using molecularly targeted gold nanorods,” Nano Lett. 7(4), 941–945 (2007). [CrossRef] [PubMed]
W. S. Kuo, C. N. Chang, Y. T. Chang, M. H. Yang, Y. H. Chien, S. J. Chen, and C. S. Yeh, “Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging,” Angew. Chem. Int. Ed. Engl. 49(15), 2711–2715 (2010). [PubMed]
W. S. Kuo, C. N. Chang, Y. T. Chang, and C. S. Yeh, “Antimicrobial gold nanorods with dual-modality photodynamic inactivation and hyperthermia,” Chem. Commun. (Camb.) 32(32), 4853–4855 (2009). [CrossRef]
Y. Zhang, K. Aslan, M. J. R. Previte, and C. D. Geddes, “Plasmonic engineering of singlet oxygen generation,” Proc. Natl. Acad. Sci. U.S.A. 105(6), 1798–1802 (2008). [CrossRef] [PubMed]
K. Aslan, S. N. Malyn, and C. D. Geddes, “Metal-enhanced fluorescence from gold surfaces: angular dependent emission,” J. Fluoresc. 17(1), 7–13 (2006). [CrossRef] [PubMed]
J. D. Pitts, P. J. Campagnola, G. A. Epling, and S. L. Goodman, “Submicron multiphoton free-form fabrication of proteins and polymers: studies of reaction efficiencies and applications in sustained release,” Macromolecules 33(5), 1514–1523 (2000). [CrossRef]
2. Sample preparation and microfabrication procedure
2.1. Sample preparation
W. S. Kuo, C. M. Wu, Z. S. Yang, S. Y. Chen, C. Y. Chen, C. C. Huang, W. M. Li, C. K. Sun, and C. S. Yeh, “Biocompatible bacteria@Au composites for application in the photothermal destruction of cancer cells,” Chem. Commun. (Camb.) 37(37), 4430–4432 (2008). [CrossRef]
W. S. Kuo, C. N. Chang, Y. T. Chang, and C. S. Yeh, “Antimicrobial gold nanorods with dual-modality photodynamic inactivation and hyperthermia,” Chem. Commun. (Camb.) 32(32), 4853–4855 (2009). [CrossRef]
2.2. Microfabrication instrument and the design of freeform structures
W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef]
2.3. Wavelength selection in femtosecond laser microfabrication
W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef]
C. Xu and W. W. Webb, “Measurement of two-photon excitation cross sections of molecular fluorophores with data from 690 to 1050 nm,” J. Opt. Soc. Am. B 13(3), 481–491 (1996). [CrossRef]
W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef]
3. Experimental results and discussions
3.1. Freeform crosslinked BSA microstructures
D. C. Neckers, “Rose Bengal,” J. Photochem. Photobiol., A 47(1), 1–29 (1989). [CrossRef]
3.2. Plasmon-assisted microfabrication
W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef]
S. Link, C. Burda, B. Nikoobakht, and M. A. El-Sayed, “Laser-induced shape changes of colloidal gold nanorods using femtosecond and nanosecond laser pulses,” J. Phys. Chem. 104(26), 6152–6163 (2000). [CrossRef]
Y. Zhang, K. Aslan, M. J. R. Previte, and C. D. Geddes, “Plasmonic engineering of singlet oxygen generation,” Proc. Natl. Acad. Sci. U.S.A. 105(6), 1798–1802 (2008). [CrossRef] [PubMed]
3.3. 3D BSA microstructure with AuNRs
4. Conclusions
Acknowledgments
References and links
C. R. Lambert, I. E. Kochevar, and R. W. Redmond, “Differential reactivity of upper triplet states produces wavelength-dependent two-photon photosensitization using Rose Bengal,” J. Phys. Chem. B 103(18), 3737–3741 (1999). [CrossRef] | |
J. D. Pitts, P. J. Campagnola, G. A. Epling, and S. L. Goodman, “Submicron multiphoton free-form fabrication of proteins and polymers: studies of reaction efficiencies and applications in sustained release,” Macromolecules 33(5), 1514–1523 (2000). [CrossRef] | |
S. Kawata, H. B. Sun, T. Tanaka, and K. Takada, “Finer features for functional microdevices,” Nature 412(6848), 697–698 (2001). [CrossRef] [PubMed] | |
P. Galajda and P. Ormos, “Complex micromachines produced and driven by light,” Appl. Phys. Lett. 78(2), 249–251 (2001). [CrossRef] | |
T. Watanabe, M. Akiyama, K. Totani, S. M. Kuebler, F. Stellacci, W. Wenseleers, K. Braun, S. R. Marder, and J. W. Perry, “Photoresponsive hydrogel microstructure fabricated by two-photon initiated Polymerization,” Adv. Funct. Mater. 12(9), 611–614 (2002). [CrossRef] | |
Z. B. Sun, X. Z. Dong, W. Q. Chen, S. Nakanishi, M. Duan, and S. Kawata, “Multicolor polymer nanocomposites: in situ synthesis and fabrication of 3D microstructures,” Adv. Mater. (Deerfield Beach Fla.) 20(5), 914–919 (2008). [CrossRef] | |
M. A. Swartz, “Signaling in morphogenesis: transport cues in morphogenesis,” Curr. Opin. Biotechnol. 14(5), 547–550 (2003). [CrossRef] [PubMed] | |
L. Liaw, M. P. Skinner, E. W. Raines, R. Ross, D. A. Cheresh, S. M. Schwartz, and C. M. Giachelli, “The adhesive and migratory effects of osteopontin are mediated via distinct cell surface integrins. Role of alpha v beta 3 in smooth muscle cell migration to osteopontin in vitro,” J. Clin. Invest. 95(2), 713–724 (1995). [CrossRef] [PubMed] | |
S. Basu, L. P. Cunningham, G. D. Pins, K. A. Bush, R. Taboada, A. R. Howell, J. Wang, and P. J. Campagnola, “Multi-photon excited fabrication of collagen matrices crosslinked by a modified benzophenone dimer: Bioactivity and enzymatic degradation,” Biomacromolecules 6(3), 1465–1474 (2005). [CrossRef] [PubMed] | |
G. D. Pins, K. A. Bush, L. P. Cunningham, and P. J. Campagnola, “Multiphoton excited fabricated nano and micropatterned extracellular matrix proteins direct cellular morphology,” J. Biomed. Mater. Res. 78A(1), 194–204 (2006). [CrossRef] | |
R. T. Hill, J. L. Lyon, R. Allen, K. J. Stevenson, and J. B. Shear, “Microfabrication of three-dimensional bioelectronic architectures,” J. Am. Chem. Soc. 127(30), 10707–10711 (2005). [CrossRef] [PubMed] | |
W. S. Kuo, C. N. Chang, Y. T. Chang, M. H. Yang, Y. H. Chien, S. J. Chen, and C. S. Yeh, “Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging,” Angew. Chem. Int. Ed. Engl. 49(15), 2711–2715 (2010). [PubMed] | |
W. S. Kuo, C. M. Wu, Z. S. Yang, S. Y. Chen, C. Y. Chen, C. C. Huang, W. M. Li, C. K. Sun, and C. S. Yeh, “Biocompatible bacteria@Au composites for application in the photothermal destruction of cancer cells,” Chem. Commun. (Camb.) 37(37), 4430–4432 (2008). [CrossRef] | |
W. S. Kuo, C. N. Chang, Y. T. Chang, and C. S. Yeh, “Antimicrobial gold nanorods with dual-modality photodynamic inactivation and hyperthermia,” Chem. Commun. (Camb.) 32(32), 4853–4855 (2009). [CrossRef] | |
J. Nappa, G. Revillod, J. P. Abid, I. Russier-Antoine, C. Jonin, E. Benichou, H. H. Girault, and P. F. Brevet, “Hyper-Rayleigh scattering of gold nanorods and their relationship with linear assemblies of gold nanospheres,” Faraday Discuss. 125, 145–156 (2004). [CrossRef] [PubMed] | |
A. K. Singh, D. Senapati, S. Wang, J. Griffin, A. Neely, P. Candice, K. M. Naylor, B. Varisli, J. R. Kalluri, and P. C. Ray, “Gold nanorod based selective identification of Escherichia coli bacteria using two-photon Rayleigh scattering spectroscopy,” ACS Nano 3(7), 1906–1912 (2009). [CrossRef] [PubMed] | |
Q. Liao, C. Mu, D. S. Xu, X. C. Ai, J. N. Yao, and J. P. Zhang, “Gold nanorod arrays with good reproducibility for high-performance surface-enhanced Raman scattering,” Langmuir 25(8), 4708–4714 (2009). [CrossRef] [PubMed] | |
A. L. Oldenburg, M. N. Hansen, D. A. Zweifel, A. Wei, and S. A. Boppart, “Plasmon-resonant gold nanorods as low backscattering albedo contrast agents for optical coherence tomography,” Opt. Express 14(15), 6724–6738 (2006). [CrossRef] [PubMed] | |
N. J. Durr, T. Larson, D. K. Smith, B. A. Korgel, K. Sokolov, and A. Ben-Yakar, “Two-photon luminescence imaging of cancer cells using molecularly targeted gold nanorods,” Nano Lett. 7(4), 941–945 (2007). [CrossRef] [PubMed] | |
Y. Zhang, K. Aslan, M. J. R. Previte, and C. D. Geddes, “Plasmonic engineering of singlet oxygen generation,” Proc. Natl. Acad. Sci. U.S.A. 105(6), 1798–1802 (2008). [CrossRef] [PubMed] | |
K. Aslan, S. N. Malyn, and C. D. Geddes, “Metal-enhanced fluorescence from gold surfaces: angular dependent emission,” J. Fluoresc. 17(1), 7–13 (2006). [CrossRef] [PubMed] | |
W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef] | |
C. Xu and W. W. Webb, “Measurement of two-photon excitation cross sections of molecular fluorophores with data from 690 to 1050 nm,” J. Opt. Soc. Am. B 13(3), 481–491 (1996). [CrossRef] | |
D. C. Neckers, “Rose Bengal,” J. Photochem. Photobiol., A 47(1), 1–29 (1989). [CrossRef] | |
S. Link, C. Burda, B. Nikoobakht, and M. A. El-Sayed, “Laser-induced shape changes of colloidal gold nanorods using femtosecond and nanosecond laser pulses,” J. Phys. Chem. 104(26), 6152–6163 (2000). [CrossRef] |
OCIS Codes
(120.4610) Instrumentation, measurement, and metrology : Optical fabrication
(190.4180) Nonlinear optics : Multiphoton processes
(240.6680) Optics at surfaces : Surface plasmons
ToC Category:
Optics at Surfaces
History
Original Manuscript: January 12, 2011
Revised Manuscript: March 8, 2011
Manuscript Accepted: March 11, 2011
Published: March 18, 2011
Virtual Issues
Vol. 6, Iss. 4 Virtual Journal for Biomedical Optics
Citation
Chi-Hsiang Lien, Wen-Shuo Kuo, Keng-Chi Cho, Chun-Yu Lin, Yuan-Deng Su, Lynn L. H. Huang, Paul J. Campagnola, Chen Yuan Dong, and Shean-Jen Chen, "Fabrication of gold nanorods-doped, bovine serum albumin microstructures via multiphoton excited photochemistry," Opt. Express 19, 6260-6268 (2011)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-19-7-6260
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References
- C. R. Lambert, I. E. Kochevar, and R. W. Redmond, “Differential reactivity of upper triplet states produces wavelength-dependent two-photon photosensitization using Rose Bengal,” J. Phys. Chem. B 103(18), 3737–3741 (1999). [CrossRef]
- J. D. Pitts, P. J. Campagnola, G. A. Epling, and S. L. Goodman, “Submicron multiphoton free-form fabrication of proteins and polymers: studies of reaction efficiencies and applications in sustained release,” Macromolecules 33(5), 1514–1523 (2000). [CrossRef]
- S. Kawata, H. B. Sun, T. Tanaka, and K. Takada, “Finer features for functional microdevices,” Nature 412(6848), 697–698 (2001). [CrossRef] [PubMed]
- P. Galajda and P. Ormos, “Complex micromachines produced and driven by light,” Appl. Phys. Lett. 78(2), 249–251 (2001). [CrossRef]
- T. Watanabe, M. Akiyama, K. Totani, S. M. Kuebler, F. Stellacci, W. Wenseleers, K. Braun, S. R. Marder, and J. W. Perry, “Photoresponsive hydrogel microstructure fabricated by two-photon initiated Polymerization,” Adv. Funct. Mater. 12(9), 611–614 (2002). [CrossRef]
- Z. B. Sun, X. Z. Dong, W. Q. Chen, S. Nakanishi, M. Duan, and S. Kawata, “Multicolor polymer nanocomposites: in situ synthesis and fabrication of 3D microstructures,” Adv. Mater. (Deerfield Beach Fla.) 20(5), 914–919 (2008). [CrossRef]
- M. A. Swartz, “Signaling in morphogenesis: transport cues in morphogenesis,” Curr. Opin. Biotechnol. 14(5), 547–550 (2003). [CrossRef] [PubMed]
- L. Liaw, M. P. Skinner, E. W. Raines, R. Ross, D. A. Cheresh, S. M. Schwartz, and C. M. Giachelli, “The adhesive and migratory effects of osteopontin are mediated via distinct cell surface integrins. Role of alpha v beta 3 in smooth muscle cell migration to osteopontin in vitro,” J. Clin. Invest. 95(2), 713–724 (1995). [CrossRef] [PubMed]
- S. Basu, L. P. Cunningham, G. D. Pins, K. A. Bush, R. Taboada, A. R. Howell, J. Wang, and P. J. Campagnola, “Multi-photon excited fabrication of collagen matrices crosslinked by a modified benzophenone dimer: Bioactivity and enzymatic degradation,” Biomacromolecules 6(3), 1465–1474 (2005). [CrossRef] [PubMed]
- G. D. Pins, K. A. Bush, L. P. Cunningham, and P. J. Campagnola, “Multiphoton excited fabricated nano and micropatterned extracellular matrix proteins direct cellular morphology,” J. Biomed. Mater. Res. 78A(1), 194–204 (2006). [CrossRef]
- R. T. Hill, J. L. Lyon, R. Allen, K. J. Stevenson, and J. B. Shear, “Microfabrication of three-dimensional bioelectronic architectures,” J. Am. Chem. Soc. 127(30), 10707–10711 (2005). [CrossRef] [PubMed]
- W. S. Kuo, C. N. Chang, Y. T. Chang, M. H. Yang, Y. H. Chien, S. J. Chen, and C. S. Yeh, “Gold nanorods in photodynamic therapy, as hyperthermia agents, and in near-infrared optical imaging,” Angew. Chem. Int. Ed. Engl. 49(15), 2711–2715 (2010). [PubMed]
- W. S. Kuo, C. M. Wu, Z. S. Yang, S. Y. Chen, C. Y. Chen, C. C. Huang, W. M. Li, C. K. Sun, and C. S. Yeh, “Biocompatible bacteria@Au composites for application in the photothermal destruction of cancer cells,” Chem. Commun. (Camb.) 37(37), 4430–4432 (2008). [CrossRef]
- W. S. Kuo, C. N. Chang, Y. T. Chang, and C. S. Yeh, “Antimicrobial gold nanorods with dual-modality photodynamic inactivation and hyperthermia,” Chem. Commun. (Camb.) 32(32), 4853–4855 (2009). [CrossRef]
- J. Nappa, G. Revillod, J. P. Abid, I. Russier-Antoine, C. Jonin, E. Benichou, H. H. Girault, and P. F. Brevet, “Hyper-Rayleigh scattering of gold nanorods and their relationship with linear assemblies of gold nanospheres,” Faraday Discuss. 125, 145–156 (2004). [CrossRef] [PubMed]
- A. K. Singh, D. Senapati, S. Wang, J. Griffin, A. Neely, P. Candice, K. M. Naylor, B. Varisli, J. R. Kalluri, and P. C. Ray, “Gold nanorod based selective identification of Escherichia coli bacteria using two-photon Rayleigh scattering spectroscopy,” ACS Nano 3(7), 1906–1912 (2009). [CrossRef] [PubMed]
- Q. Liao, C. Mu, D. S. Xu, X. C. Ai, J. N. Yao, and J. P. Zhang, “Gold nanorod arrays with good reproducibility for high-performance surface-enhanced Raman scattering,” Langmuir 25(8), 4708–4714 (2009). [CrossRef] [PubMed]
- A. L. Oldenburg, M. N. Hansen, D. A. Zweifel, A. Wei, and S. A. Boppart, “Plasmon-resonant gold nanorods as low backscattering albedo contrast agents for optical coherence tomography,” Opt. Express 14(15), 6724–6738 (2006). [CrossRef] [PubMed]
- N. J. Durr, T. Larson, D. K. Smith, B. A. Korgel, K. Sokolov, and A. Ben-Yakar, “Two-photon luminescence imaging of cancer cells using molecularly targeted gold nanorods,” Nano Lett. 7(4), 941–945 (2007). [CrossRef] [PubMed]
- Y. Zhang, K. Aslan, M. J. R. Previte, and C. D. Geddes, “Plasmonic engineering of singlet oxygen generation,” Proc. Natl. Acad. Sci. U.S.A. 105(6), 1798–1802 (2008). [CrossRef] [PubMed]
- K. Aslan, S. N. Malyn, and C. D. Geddes, “Metal-enhanced fluorescence from gold surfaces: angular dependent emission,” J. Fluoresc. 17(1), 7–13 (2006). [CrossRef] [PubMed]
- W. S. Kuo, C.-H. Lien, K.-C. Cho, C.-Y. Chang, C.-Y. Lin, L. L. H. Huang, P. J. Campagnola, C.-Y. Dong, and S.-J. Chen, “Multiphoton fabrication of freeform polymer microstructures with gold nanorods,” Opt. Express 18(26), 27550–27559 (2010). [CrossRef]
- C. Xu and W. W. Webb, “Measurement of two-photon excitation cross sections of molecular fluorophores with data from 690 to 1050 nm,” J. Opt. Soc. Am. B 13(3), 481–491 (1996). [CrossRef]
- D. C. Neckers, “Rose Bengal,” J. Photochem. Photobiol., A 47(1), 1–29 (1989). [CrossRef]
- S. Link, C. Burda, B. Nikoobakht, and M. A. El-Sayed, “Laser-induced shape changes of colloidal gold nanorods using femtosecond and nanosecond laser pulses,” J. Phys. Chem. 104(26), 6152–6163 (2000). [CrossRef]
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