Handbook on the Physics and Chemistry of Rare Earths: Optical Spectroscopy

Gschneidner, Karl A.

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Table of contents
  • Cover
  • Contentsxxix
  • Prefacev
  • Dedication to William T. Carnallxi
  • Contents of Volumes 1–36xxxi
  • Index of Contents of Volumes 1–37xli
  • Chapter 231. First-principles calculations of 4fn ->4fn-15d transition spectra1
  • Symbols and abbreviations2
  • 1. Introduction3
  • 2. Brief review of previous semiempirical and first-principles calculations4
  • 3. Method for first-principles calculations10
  • 4. Results of first-principles calculations15
  • 5. Summary and perspectives57
  • Acknowledgements58
  • References58
  • Chapter 232. 4fn-4fn-15d transitions61
  • List of symbols62
  • 1. Introduction62
  • 2. Parametrized energy level calculations63
  • 3. Energy levels of the 4fn-15d configuration73
  • 4. Other techniques91
  • 5. Conclusions94
  • References95
  • Chapter 233. Spectroscopic properties of lanthanides in nanomaterials99
  • List of acronyms100
  • 1. Introduction100
  • 2. Size effects on the structure of electronic levels103
  • 3. Confinement on excited-state dynamics105
  • 4. Spectroscopy of lanthanide ions doped in insulating nanocrystals112
  • 5. Spectroscopy of lanthanide ions in semiconductor nanocrystals134
  • 6. Spectroscopy of lanthanides doped in core-shell, nanowires, nanotubes, and other novel nanostruct151
  • 7. Summary165
  • Acknowledgements166
  • References166
  • Chapter 234. Lanthanide Chelates as Luminescent Labels in Biomedical Analyses171
  • List of symbols and acronyms171
  • 1.Introduction173
  • 2. Synthesis and luminescent properties of lanthanide chelates176
  • 3. Bioconjugation of lanthanide chelate labels188
  • 4. Principle of time-resolved luminescence measurement using lanthanide labels190
  • 5. Fluorescence resonance energy transfer (FRET) and fluorescence quenching for lanthanide labels192
  • 6. Time-resolved fluorometric immunoassay195
  • 7. Applications targeting nucleic acids197
  • 8. Applications targeting cells206
  • 9. Conclusion and perspectives213
  • References214
  • Chapter 235. Lanthanide Near-Infrared Luminescence in Molecular Probes and Devices217
  • List of abbreviations218
  • 1. Outline and scope of the review221
  • 2. Photophysics of near-infrared emitting trivalent lanthanide ions224
  • 3. NIR-emitting molecular edifices244
  • 4. Overview of potential applications400
  • 5. Comparison of the chromophores425
  • 6. Conclusions453
  • References457
  • Author Index471
  • Subject Index503
Book details
  • Vendor Elsevier S & T
  • SKU 9780444521446
  • ISBN-13 9780080548586
  • Author Gschneidner, Karl A.
  • Category Science
  • Subject Spectroscopy & Spectrum Analysis

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Optical spectroscopy has been instrumental in the discovery of many lanthanide elements. In return, these elements have always played a prominent role in lighting devices and light conversion technologies (Auer mantles, incandescent lamps, lasers, cathode-ray and plasma displays). They are also presently used in highly sensitive luminescent bio-analyses and cell imaging. This volume of the Handbook on the Physics and Chemistry of Rare Earths is entirely devoted to the photophysical properties of these elements. It is dedicated to the late Professor William T (Bill) Carnall who has pioneered the understanding of lanthanide spectra in the 1960’s and starts with a Dedication to this scientist. The following five chapters describe various aspects of lanthanide spectroscopy and its applications. Chapters 231 presents state-of-the-art theoretical calculations of lanthanide energy levels and transition intensities. It is followed by a review (Chapter 232) on both theoretical and experimental aspects of f-d transitions, a less well known field of lanthanide spectroscopy, yet very important for the design of new optical materials. Chapter 233 describes how confinement effects act on the photophysical properties of lanthanides when they are inserted into nanomaterials, including nanoparticles, nanosheets, nanowires, nanotubes, insulating and semiconductor nanocrystals. The use of lanthanide chelates for biomedical analyses is presented in Chapter 234; long lifetimes of the excited states of lanthanide ions allow the use of time-resolved spectroscopy, which leads to highly sensitive analyses devoid of background effect from the autofluorescence of the samples. The last review (Chapter 235) provides a comprehensive survey of near-infrared (NIR) emitting molecular probes and devices, spanning an all range of compounds, from simple chelates to macrocyclic complexes, heterometallic functional edifices, coordination polymers and other extended structures. Applications ranging from telecommunications to light-emitting diodes and biomedical analyses are assessed.

- Provides a comprehensive look at optical spectroscopy and its applications
- A volume in the continuing authoritative series which deals with the chemistry, materials science, physics and technology of the rare earth elements