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HANDBOOK ON THE PHYSICS AND CHEMISTRY OF RARE EARTHS

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HANDBOOK ON THE PHYSICS AND CHEMISTRY OF RARE EARTHS ( handbook-onphysics-and-chemistry-rare-earths )

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Lanthanides in Luminescent Thermometry Chapter 281 413 Childs, P.R.N., Greenwood, J.R., Long, C.A., 2000. Review of temperature measurement. Rev. Sci. Instrum. 71, 2959–2978. Cho, S.J., Maysinger, D., Jain, M., Roder, B., Hackbarth, S., Winnik, F.M., 2007. Long-term exposure to CdTe quantum dots causes functional impairments in live cells. Langmuir 23, 1974–1980. Christofferson, J., Maize, K., Ezzahri, Y., Shabani, J., Wang, X., Shakouri, A., 2008. Microscale and nanoscale thermal characterization techniques. (Reprinted from Thermal Issues in Emerging Technologies: Theory and Application, January, 2007). J. Electron. Packag. 130, 041101–041106. Clark, J.L., Miller, P.F., Rumbles, G., 1998. Red edge photophysics of ethanolic rhodamine 101 and the observation of laser cooling in the condensed phase. J. Phys. Chem. A 102, 4428–4437. Collins, S., Baxter, G., Wade, S., Sun, T., Grattan, K., Zhang, Z., Palmer, A., 1998. Comparison of fluorescence-based temperature sensor schemes: theoretical analysis and experimental val- idation. J. Appl. Phys. 84, 4649–4654. Comby, S., B€unzli, J.-C.G., 2007. Lanthanide near-infrared luminescence in molecular probes and devices. In: Gschneidner Jr., K.A., B€unzli, J.-C.G., Pecharsky, V.K. (Eds.), Handbook on the Physics and Chemistry of Rare Earths, vol. 37. Elsevier Science, B. V., New York, pp. 217–470 (Chapter 235). Cooke, D.W., Muenchausen, R.E., Bennett, B.L., McClellan, K.J., Portis, A.M., 1998. Temperature-dependent luminescence of cerium-doped ytterbium oxyorthosilicate. J. Lumin. 79, 185–190. Cooke, D.W., Bennett, B.L., Muenchausen, R.E., Lee, J.K., Nastasi, M.A., 2004. Intrinsic ultravi- olet luminescence from Lu2O3, Lu2SiO5 and Lu2SiO5:Ce3+. J. Lumin. 106, 125–132. Corke, M., Kersey, A.D., Jackson, D.A., Jones, J.D.C., 1983. All-fiber Michelson thermometer. Electron. Lett. 19, 471–473. Costescu, R.M., Cahill, D.G., Fabreguette, F.H., Sechrist, Z.A., George, S.M., 2004. Ultra-low thermal conductivity in W/Al2O3 nanolaminates. Science 303, 989–990. Cui, Y.J., Xu, H., Yue, Y.F., Guo, Z.Y., Yu, J.C., Chen, Z.X., Gao, J.K., Yang, Y., Qian, G.D., Chen, B.L., 2012. A luminescent mixed-lanthanide metal-organic framework thermometer. J. Am. Chem. Soc. 134, 3979–3982. Cui, Y.J., Zou, W.F., Song, R.J., Yu, J.C., Zhang, W.Q., Yang, Y., Qian, G.D., 2014. A ratiometric and colorimetric luminescent thermometer over a wide temperature range based on a lanthanide coordination polymer. Chem. Commun. 50, 719–721. Cui, Y., Song, R., Yu, J., Liu, M., Wang, Z., Wu, C., Yang, Y., Wang, Z., Chen, B., Qian, G., 2015a. Dual-emitting MOF supersetdye composite for ratiometric temperature sensing. Adv. Mater. 27, 1420–1425. Cui, Y., Zhu, F., Chen, B., Qian, G., 2015b. Metal-organic frameworks for luminescence ther- mometry. Chem. Commun. 51, 7420–7431. Debasu, M.L., Ananias, D., Pastoriza-Santos, I., Liz-Marza ́n, L.M., Rocha, J., Carlos, L.D., 2013. All-in-one optical heater–thermometer nanoplatform operative from 300 to 2000 k based on Er3+ emission and blackbody radiation. Adv. Mater. 25, 4868–4874. de la Rosa, R.V., Woisel, P., Hoogenboom, R., 2016. Supramolecular control over thermorespon- sive polymers. Mater. Today 19, 44–55. del Rosal, B., Sun, C., Yan, Y., Mackenzie, M.D., Lu, C., Bettiol, A.A., Kar, A.K., Jaque, D., 2014. Flow effects in the laser-induced thermal loading of optical traps and optofluidic devices. Opt. Express 22, 23938–23954.

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