Chinese Journal of Lasers, Volume. 47, Issue 10, 1006002(2020)
Temperature Characteristics of Fluorescence Spectra of Cadmium Selenide Quantum Dots Coupled with Hydroxyapatite
[5] Walker G W, Sundar V C, Rudzinski C M et al. Quantum-dot optical temperature probes[J]. Applied Physics Letters, 83, 3555-3557(2003).
[9] Li S, Zhang K, Yang J M et al. Single quantum dots as local temperature markers[J]. Nano Letters, 7, 3102-3105(2007).
[10] Maestro L M, Rodríguez E M, Rodríguez F S et al. CdSe quantum dots for two-photon fluorescence thermal imaging[J]. Nano Letters, 10, 5109-5115(2010).
[11] Yang J M, Yang H, Lin L W. Quantum dot nano thermometers reveal heterogeneous local thermogenesis in living cells[J]. ACS Nano, 5, 5067-5071(2011).
[12] del Rosal B, Carrasco E, Ren F Q et al. Infrared-emitting QDs for thermal therapy with real-time subcutaneous temperature feedback[J]. Advanced Functional Materials, 26, 6060-6068(2016).
[13] Jiang X B, Li B Q, Qu X et al. Thermal sensing with CdTe/CdS/ZnS quantum dots in human umbilical vein endothelial cells[J]. Journal of Materials Chemistry B, 5, 8983-8990(2017).
[14] Derfus A M. Chan W C W, Bhatia S N. Probing the cytotoxicity of semiconductor quantum dots[J]. Nano Letters, 4, 11-18(2004).
[15] Huang Y F, Qiu W W, Yu Z H et al. Toxic effect of cadmium adsorbed by different sizes of nano-hydroxyapatite on the growth of rice seedlings[J]. Environmental Toxicology and Pharmacology, 52, 1-7(2017).
[17] Foroughi M R, Zarei M. Synthesis of hydroxyapatite nanoparticles for the removal of Pb(II) and Cd(II) from industrial wastewaters[J]. Research on Chemical Intermediates, 41, 4009-4019(2015).
[18] Li H Y, Guo X S, Ye X X. Screening hydroxyapatite for cadmium and lead immobilization in aqueous solution and contaminated soil: the role of surface area[J]. Journal of Environmental Sciences, 52, 141-150(2017).
[20] Zeng S L, Zhou R H, Zheng X K et al. Mono-dispersed Ba 2+-doped nano-hydroxyapatite conjugated with near-infrared Cu-doped CdS quantum dots for CT/fluorescence bimodal targeting cell imaging[J]. Microchemical Journal, 134, 41-48(2017).
[21] Hails L A, Babister J C, Inglis S et al. Inhibition of hydroxyapatite nanoparticle-induced osteogenic activity in skeletal cells by adsorption of serum proteins[J]. Small, 6, 1986-1991(2010).
[23] Wu G J, Zhou L Z, Wang K W et al. Hydroxylapatite nanorods: an efficient and promising carrier for gene transfection[J]. Journal of Colloid and Interface Science, 345, 427-432(2010).
[24] Wei J C, Liu A X, Chen L et al. The surface modification of hydroxyapatite nanoparticles by the ring opening polymerization of γ-benzyl-L-glutamate N-carboxyanhydride[J]. Macromolecular Bioscience, 9, 631-638(2009).
[25] Al Salman A, Tortschanoff A, Mohamed M B et al. Temperature effects on the spectral properties of colloidal CdSe nanodots, nanorods, and tetrapods[J]. Applied Physics Letters, 90, 093104(2007).
[26] Cheng C, Yan H Z. Bandgap of the core-shell CdSe/ZnS nanocrystal within the temperature range 300--373 K[J]. Physica E: Low-dimensional Systems and Nanostructures, 41, 828-832(2009).
[27] Biju V, Makita Y, Sonoda A et al. Temperature-sensitive photoluminescence of CdSe quantum dot clusters[J]. The Journal of Physical Chemistry. B, 109, 13899-13905(2005).
[28] Dong L Y, Zhu Y J. A new kind of fireproof, flexible, inorganic, nanocomposite paper and its application to the protection layer in flame-retardant fiber-optic cables[J]. Chemistry-A European Journal, 23, 4597-4604(2017).
[29] Lu B Q, Zhu Y J, Chen F. Highly flexible and nonflammable inorganic hydroxyapatite paper[J]. Chemistry-A European Journal, 20, 1242-1246(2014).
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Chen Zhenyi, Wang Jintian, Chen Na, Liu Shupeng, Wang Tingyun. Temperature Characteristics of Fluorescence Spectra of Cadmium Selenide Quantum Dots Coupled with Hydroxyapatite[J]. Chinese Journal of Lasers, 2020, 47(10): 1006002
Category: Fiber optics and optical communication
Received: Apr. 13, 2020
Accepted: --
Published Online: Oct. 16, 2020
The Author Email: Na Chen (na.chen@shu.edu.cn)