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Titlebook: Nonlinear Optics; Basic Concepts D. L. Mills Textbook 19911st edition Springer-Verlag Berlin Heidelberg 1991 Laser.Nichtlineare Optik.chemi

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發(fā)表于 2025-3-21 17:54:21 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Nonlinear Optics
副標題Basic Concepts
編輯D. L. Mills
視頻videohttp://file.papertrans.cn/668/667588/667588.mp4
圖書封面Titlebook: Nonlinear Optics; Basic Concepts D. L. Mills Textbook 19911st edition Springer-Verlag Berlin Heidelberg 1991 Laser.Nichtlineare Optik.chemi
描述One intriguing aspect of physics is its dynamic and rapidly evolving nature; exciting new fields can become moribund within relatively few years, only to revive and grow again in a dramatic and expolisve manner in response to new developments. This has been the case for the fields of optics and atomic physics. In the 1950s, and perhaps into the early 1960s, both fields appeared mature, fully developed, and perhaps even a bit dull as a consequence. The appearance of the laser has tumed both of these fields into dynamic areas of research, within which fundamental and profound questions are being explored. The research of the past two or three decades has led also to very important applications and to new devices. The dye laser, which enables a very narrow line to be tuned over an appreciable spectral range, has led to a virtual revolution in the spec- troscopy of atoms, molecules, and the condensed phases of matter. A parallel development, readily detectable in the recent literature of theoretical physics, has been the substantial advance in OUf understand- ing of highly nonlinear phenomena. Numerous texts are devoted to exposition of the theoretical methods which may be used to extr
出版日期Textbook 19911st edition
關(guān)鍵詞Laser; Nichtlineare Optik; chemistry; interactions; nonlinear optics; optics; physics; solitons; transparenc
版次1
doihttps://doi.org/10.1007/978-3-662-00213-1
isbn_ebook978-3-662-00213-1
copyrightSpringer-Verlag Berlin Heidelberg 1991
The information of publication is updating

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, and the condensed phases of matter. A parallel development, readily detectable in the recent literature of theoretical physics, has been the substantial advance in OUf understand- ing of highly nonlinear phenomena. Numerous texts are devoted to exposition of the theoretical methods which may be used to extr978-3-662-00213-1
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Introductory Remarks,ll always be concerned with electric fields whose spatial variation involves length scales very large compared to the size of the atoms and molecules that are the basic constituents of the material of interest. In this regard, we note that in the visible portion of the spectrum, the wavelength of li
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Linear Dielectric Response of Matter,moment per unit volume displayed in (1.7 b). For much of what follows here, the tensor nature of the dielectric response is of little explicit interest, so we assume for the moment the dielectric susceptibility tensor .. introduced in Chap. 1 is diagonal, .. = ....
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Interaction of Atoms with Nearly Resonant Fields: Self-Induced Transparency,an be expanded in powers of the electric field .. The justification for this procedure is the notion that the largest applied fields encountered in practice are very small compared to those encountered by an electron within an atom or a molecule. It follows that the electronic arrangement in the ato
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Self-Interaction Effects in One-Dimensional Wave Propagation: Solitons in Optical Fibers and in Pernic structure of the physical system exposed to the electromagnetic field is perturbed far from equilibrium in the course of its evolution. In the soliton pulses encountered in the theory of self-induced transparency, for example, the resonant atoms are moved from their ground state, to the first ex
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Chaos,ies. Our first example was the response of the anharmonic oscillator described by (3.15). This led us to understand, on the basis of this simple model, the qualitative aspects of the frequency variation of the nonlinear susceptibilities, and also the influence of the anharmonic terms on the frequenc
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