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Titlebook: Biophotonics; Lorenzo Pavesi,Philippe M. Fauchet Book 2008 Springer-Verlag Berlin Heidelberg 2008 biomedical applications.biophotonics.dia

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發(fā)表于 2025-3-21 17:59:17 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
期刊全稱Biophotonics
影響因子2023Lorenzo Pavesi,Philippe M. Fauchet
視頻videohttp://file.papertrans.cn/189/188326/188326.mp4
發(fā)行地址Deals with the basics and applications of the most advanced optical methods in biology and medicine for cancer diagnosis and treatment or gene analysis.Written for researchers and medical practitioner
學(xué)科分類Biological and Medical Physics, Biomedical Engineering
圖書封面Titlebook: Biophotonics;  Lorenzo Pavesi,Philippe M. Fauchet Book 2008 Springer-Verlag Berlin Heidelberg 2008 biomedical applications.biophotonics.dia
影響因子.More profound understanding of the nature of light and light-matter interactions in biology has enabled many applications in the biology and medical fields. So a new discipline is born, namely biophotonics. The aim of this book is to review the current state-of-the-art of the field by means of authoritative chapters written by the world leaders of the respective fields. Biosensors, biochips, optical tomography, optical microsurgery, photodynamics therapy, bioactivation of gene, photobiology of skin, and nanobiophotonics are each introduced and recent advances presented. This book will be useful not only to physicians, biologists, physicists, chemists, materials scientists, and engineers but also to graduate students who are interested in these rapidly developing fields..
Pindex Book 2008
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Exploiting Photosynthesis for Biofuel Production,0 “Quads,” where one Quad corresponds to about 25 million of oil equivalent tons (MTep, http://www.eia.doe.gov/oiaf/aeo/conf/). Nowadays, over 85% of world energy demands are met by the combustion of fossil fuels: coal, oil, and natural gas. Current oil reserves are estimated to be about 1,277 billi
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Non-Linear Microscopy,–5]. In the 1990s, the development in laser technology allowed to apply these principles to the light microscopy field [6–8]. In this context multi-photon excitation (MPE) fluorescence microscopy and second harmonic generation (SHG) imaging are representative of the continuing growth of interest in
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Applications of Optical Resonance to Biological Sensing and Imaging: I. Spectral Self-Interference labeled targets within living cells, and simultaneous detection of multiple targets using different labels. The spatial resolution in fluorescence microscopy is limited because of the diffraction limit; the resolution in transverse direction is proportional to ./2. = ./2.sin. (where . is the refrac
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Biodetection Using Silicon Photonic Crystal Microcavities,ow band in which light propagation is prohibited. However, it was not until a full century later, when Yablonovitch [1] and John [2] in 1987 combined Maxwell’s equations with solid-state physics theorems to introduce the concept of photonic bandgaps in two and three dimensions. Many subsequent devel
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Optical Coherence Tomography with Applications in Cancer Imaging,s [1, 2]. OCT was initially developed in the early 1990s, and has provided researchers with a novel means by which biological specimens and nonbiological samples can be visualized. A primary advantage of OCT is the ability to image tissue microstructure in situ at micron-scale image resolution, with
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Coherent Laser Measurement Techniques for Medical Diagnostics,rmed by the detection of object displacements while applying static stress, temperature changes, shock waves, or by vibration monitoring [1–3]. Therefore, up to the present, various holography and speckle interferometry systems for macroscopic as well as microscopic applications have been developed.
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