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Interaction of light beams propagating in 2S, 2P atomic hydrogen ; I spectroscopy

机译:光束在2S,2P原子氢中繁殖的相互作用;我光谱学

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Summary form only given. The light-matter interactions are classified in two sets: the quantified interactions in which matter performs transitions between stationary states, and the parametric interactions for which matter excited by the light returns to its initial stationary state after the interaction. Strong parametric interactions require a space-coherence of the light beams, that is the same phase between each wave and molecular dipole of same frequency at each implied molecule. With different frequencies producing generally different wavelengths, it is difficult to get the space-coherence. Therefore, except for refraction, the observation of parametric interactions requires particular conditions. Parametric interactions allowing frequency multiplications, combinations, shifts, etc often use two indices of refraction of crystals. G. L. Lamb Jr. (Rev. Mod. Phys., 43 , 99 (1971)) describes another general trick allowing parametric interactions: the use of "ultrashort light pulses" defined as "shorter than all relevant time constants". Thus, the qualifying "ultrashort", generally bound to femtosecond light pulses, applies NOT to the light only but to the set of the light and the refracting medium. Therefore, ordinary light whose coherence time is some nanoseconds is made of ultrashort pulses when it propagates in low pressure gases having a Raman resonance of the order of 100 MHz. Unhappily it is difficult to find a gas having so low a Raman frequency in a well populated state. Among common gases, only neutral atomic hydrogen in states 2S and (or) 2P (say H*) works well. Refraction and most parametric effects work without threshold of energy: the experiments show that the weakest light beam excites transitorily all molecules of a big prism, making a global non-stationary state, enough for a regular refraction. A frequency shifting interaction may be considered as produced by an interaction between several non-stationary states produced by the refraction of the c-orresponding electromagnetic beams; as these non-stationary states have the same symmetry, they interact through Raman type resonances. Thus, the effect is named "space-coherent Raman effect on time-incoherent light" (CREIL). An efficient interaction requires an increase of the entropy of the system, that is a flood of energy from modes having a high temperature (deduced from Planck's law) to colder modes. Consequently, the light is generally redshifted while the radio, thermal radiations are blueshifted. The frequency shifts, produced by thermodynamically allowed transfers of energy "catalyzed" by a refraction in H*, may be confused with Doppler shifts, the relative frequency shifts being constants if the dispersion of the polarisability of the gas is neglected. Usually, the blueshift of the radio frequencies is not detected, so that only the redshift of light is considered
机译:摘要表格仅给出。光物质相互作用被分类成两组:量化相互作用,其中关系为其中由光返回激励物质到其初始静止状态的相互作用后的参数的相互作用固定状态之间进行转换,并。强参数的相互作用所需要的光束的空间相干性,这是每个波和同一频率的分子偶极在每个分子暗示之间相同的相位。具有不同频率的产生通常是不同的波长,它是很难得到的空间相干性。因此,除了折射,参数相互作用的观测需要特定的条件。参数的相互作用允许频率乘法,组合,位移等经常使用晶体的两个折射率。 (。修订版国防部物理学,43,99(1971))G. L.兰姆小描述了另一种一般的特技允许参数的相互作用:使用“超短光脉冲”定义为“比所有相关的时间常数更短的”。因此,合格的“超短”,一般结合到飞秒光脉冲,适用于NOT只有光,但该组的光的和折射介质。因此,普通光其相干时间是一些纳秒由超短脉冲的时,它在具有100MHz量级的拉曼谐振低压气体传播。不幸的是很难找到具有如此低的拉曼频率在良好状态填充的气体。其中常见的气体,在状态2S,只有中性原子氢(或)2 P(说H *)工作良好。折射和大多数参数影响工作,没有能量的门槛:实验表明最弱的光束的激励暂时性大棱镜的所有分子,使得全球非静止状态,足以让一个普通的折射。频移的交互可以被视为通过由c orresponding电磁光束的折射产生的几个非静止状态之间的相互作用而产生;因为这些非定态具有相同的对称性,它们相互作用,通过拉曼型共振。因此,其效果被命名为“上时的非相干光的空间相干拉曼效应”(克赖尔)。一种有效的相互作用需要在系统的熵,即能量从具有高温(从普朗克定律推导出),以较冷的模式模式的洪水的增加。因此,光通常红移而无线电,热辐射是蓝移。的频移,由“催化”通过在H *折射能量的热力学允许转移产生,可以与多普勒频移相混淆,相对频率偏移是常数,如果所述气体的极化性的分散被忽略。通常,当未检测到无线频率的蓝移,使得仅光的红移被认为是

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