Books on the topic 'Two dimensional visible spectroscopy'

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1

1938-, Bellama Jon M., ed. Two-dimensional NMR spectroscopy. New York: Wiley, 1988.

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2

Two-dimensional optical spectroscopy. Boca Raton: Taylor & Francis, 2009.

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3

One and two dimensional NMR spectroscopy. Amsterdam: Elsevier, 1989.

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4

Tan, Ping-Heng, ed. Raman Spectroscopy of Two-Dimensional Materials. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-1828-3.

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5

Friebolin, Horst. Basic one- and two-dimensional NMR spectroscopy. 2nd ed. Weinheim, Germany: VCH Verlagsgesellschaft, 1993.

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6

Friebolin, Horst. Basic one- and two-dimensional NMR spectroscopy. 2nd ed. Weinheim: VCH, 1991.

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7

Basic one- and two-dimensional NMR spectroscopy. 5th ed. Weinheim: WILEY-VCH, 2011.

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8

Basic one- and two-dimensional NMR spectroscopy. 3rd ed. Weinheim: WILEY-VCH, 1998.

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9

Noda, Isao, and Yukihiro Ozaki. Two-Dimensional Correlation Spectroscopy - Applications in Vibrational and Optical Spectroscopy. Chichester, UK: John Wiley & Sons, Ltd, 2004. http://dx.doi.org/10.1002/0470012404.

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10

1925-, Nakanishi Kōji, ed. One-dimensional and two-dimensional NMR spectra by modern pulse techniques. Tokyo: Kodansha, 1990.

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11

1953-, Croasmun William R., and Carlson, Robert M. K., 1949-, eds. Two-dimensional NMR spectroscopy: Applications for chemists and biochemists. 2nd ed. New York: VCH, 1994.

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12

1953-, Croasmun William R., and Carlson, Robert M. K., 1949-, eds. Two-dimensional NMR spectroscopy: Applications for chemists and biochemists. New York, N.Y: VCH, 1987.

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13

Li, Yilei. Probing the Response of Two-Dimensional Crystals by Optical Spectroscopy. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-25376-3.

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14

Y, Ozaki, and Noda I, eds. Two-dimensional correlation spectroscopy: Kobe-Sanda, Japan, August-September 1999. Melville, N.Y: American Institute of Physics, 2000.

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15

1937-, Smith Louis C., Society of Photo-optical Instrumentation Engineers., and Symposium on Optics, Electro-Optics & Laser Applications in Science & Engineering (1990 : Los Angeles, Calif.), eds. Bioimaging and two-dimensional spectroscopy: 18-19 January 1990, Los Angeles, California. Bellingham, Wash., USA: SPIE, 1990.

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16

Rigosi, Albert Felix. Investigation of Two-Dimensional Transition Metal Dichalcogenides by Optical and Scanning Tunneling Spectroscopy. [New York, N.Y.?]: [publisher not identified], 2016.

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17

Sokell, Emma Jane. A study of decay route selectivity in atomic and molecular autoionisation using two-dimensional photoelectron spectroscopy. Manchester: University of Manchester, 1995.

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18

Martin, Gary E. Two-dimensional NMR methods for establishing molecular connectivity: A chemist's guide to experiment selection, performance, and interpretation. New York, N.Y: VCH Publishers, 1988.

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19

Cho, Minhaeng. Two-Dimensional Optical Spectroscopy. Taylor & Francis Group, 2009.

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20

Cho, Minhaeng. Two-Dimensional Optical Spectroscopy. Taylor & Francis Group, 2020.

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21

Croasmun. Two-Dimensional Nmr Spectroscopy. John Wiley & Sons Inc, 1998.

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22

Noda, Isia, Isao Noda, and Yukihiro Ozaki. Two-Dimensional Correlation Spectroscopy. Wiley & Sons, Incorporated, John, 2005.

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23

Cho, Minhaeng. Two-Dimensional Optical Spectroscopy. Taylor & Francis Group, 2009.

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24

One and Two Dimensional NMR Spectroscopy. Elsevier, 1989. http://dx.doi.org/10.1016/c2009-0-13971-5.

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25

Tan, Ping-Heng. Raman Spectroscopy of Two-Dimensional Materials. Springer, 2018.

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26

Rahman, Atta-ur. One and Two Dimensional NMR Spectroscopy. Elsevier Science & Technology Books, 2013.

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27

Friebolin, Horst. Basic One- And Two- Dimensional Nmr Spectroscopy. Vch Pub, 1991.

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28

Basic One- and Two-Dimensional NMR Spectroscopy. 4th ed. Wiley-VCH, 2005.

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29

Noda, Isao, and Yukihiro Ozaki. Two-Dimensional Correlation Spectroscopy: Applications in Vibrational and Optical Spectroscopy. Wiley & Sons, Incorporated, John, 2005.

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30

Noda, Isao. Two-Dimensional Correlation Spectroscopy: Applications in Vibrational and Optical Spectroscopy. Not Avail, 2005.

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31

Two-Dimensional Correlation Spectroscopy: Applications in Vibrational and Optical Spectroscopy. Wiley, 2002.

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32

Noda, Isao, and Yukihiro Ozaki. Two-Dimensional Correlation Spectroscopy: Applications in Vibrational and Optical Spectroscopy. Wiley & Sons, Incorporated, John, 2008.

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33

Two-dimensional NMR spectroscopy: Applications forchemists and biochemists. New York, N.Y: VCH, 1987.

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34

Two-Dimensional Nmr Spectroscopy (Methods in Stereochemical Analysis (VCN)). Wiley-VCH, 1994.

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35

Li, Yilei. Probing the Response of Two-Dimensional Crystals by Optical Spectroscopy. Springer London, Limited, 2015.

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36

Li, Yilei. Probing the Response of Two-Dimensional Crystals by Optical Spectroscopy. Springer International Publishing AG, 2016.

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37

Li, Yilei. Probing the Response of Two-Dimensional Crystals by Optical Spectroscopy. Springer International Publishing AG, 2015.

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38

Croasmun, William R., and Robert M. K. Carlson. Two Dimensional Nuclear Magnetic Resonance Spectroscopy (Methods in Stereochemical Analysis). Wiley-VCH, 1987.

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39

Croasmun, William R. Two Dimensional Nuclear Magnetic Resonance Spectroscopy: Applications for Chemists and Biochemists. VCH Verlagsgesellschaft,W.Germany, 1987.

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40

Michnick, Stephen William. Solution conformation studies of "Urtica dioica" agglutinin by two dimensional-nuclear magnetic resonance spectroscopy. 1990.

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41

Martin, G. E., and A. S. Zektzer. Two-Dimensional NMR Methods for Establishing Molecular Connectivity: A Chemist's Guide to Experiment Selection, Performance, and Interpretation. Wiley & Sons, Incorporated, John, 1988.

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42

Ozaki, Y. Two Dimensional Correlation Spectroscopy: Kobe-Sanda, Japan 29 August-1 September 1999 (Aip Conference Proceedings). AIP Press, 2000.

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43

Loomis, Cole Merritt. Two-dimensional photonic bandgap materials in the visible: The study of silicon-based triangular PBG lattice characteristics. 2000.

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44

Loomis, Cole Merritt. Two-dimensional photonic bandgap materials in the visible: The study of silicon-based triangular PBG lattice characteristics. 2000.

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45

(Editor), W. R. Croasmun, and Robert M. K. Carlson (Editor), eds. Two-Dimensional NMR Spectroscopy: Applications for Chemists and Biochemists, Second Edition, Fully Updated and Expanded to Include Multidimensional Work. Wiley-VCH, 1994.

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46

Cina, Jeffrey A. Getting Started on Time-Resolved Molecular Spectroscopy. Oxford University Press, 2022. http://dx.doi.org/10.1093/oso/9780199590315.001.0001.

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This textbook details the basic theory of ultrafast molecular spectroscopy starting from time-dependent quantum mechanical perturbation theory in Hilbert space. The emphasis is on the dynamics of nuclear and electronic motion initiated and monitored by femtosecond laser pulses that underlies nonlinear optical signal formation and interpretation. Topics include short-pulse optical absorption, the molecular adiabatic approximation, transient-absorption spectroscopy, vibrational adiabaticity during conformational change, femtosecond stimulated Raman spectroscopy, multi-dimensional electronic spectroscopy and wave-packet interferometry, and two-dimensional wave-packet interferometry of electronic excitation-transfer systems. Numerous exercises embedded in the text explore and expand upon the physical concepts encountered in this important research field.
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47

Qualitative flow visualization of a 110-N hydrogen/oxygen laboratory model thruster. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1997.

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48

Cuevas, J. C., D. Roditchev, T. Cren, and C. Brun. Proximity Effect A New Insight from In Situ Fabricated Hybrid Nanostructures. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.4.

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This article investigates the proximity effect on small length and energy scales in novel low-dimensional systems using in situ fabricated superconducting nanostructures (SNSs) and scanning tunneling microscopy/spectroscopy (STM/STS) techniques. After a brief historical review of research on superconductivity and the proximity effect, the article describes how to build a variety of in situ superconducting hybrid nanostructures and how to investigate the proximity density of states with the help of STM/STS. It then considers the proximity effect in a correlated 2D disordered metal and in diffusive SNS junctions before discussing proximity Josephson vortices. It also examines the proximity effect between two dissimilar superconductors and concludes by highlighting several fundamental problems related to proximity effect in the framework of quasiclassical microscopic Usadel theory.
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