|
所在平台: Udemy |
课程主页: https://www.udemy.com/course/optical-physics-wave-optics/
课程评论:没有评论
**光学物理 - 波光学课程总结** 本课程深入探讨了光学中的波现象,重点关注波动光学理论及其在各种光学现象中的应用。 **核心概念与原理:** 1. **惠更斯原理 (Huygen's Principle)** * 定义:波前的每一个点都是次级球面子波的波源,这些子波的包络线构成了下一时刻的波前。 * 应用:证明了光的反射和折射定律。当光速与传播方向无关时,次级波是球面波,光线垂直于波前。 2. **衍射 (Diffraction)** * 单缝衍射:单个狭缝会产生衍射图像,其中包含一个中央亮条纹和两侧对称分布的暗条纹和亮条纹。提出了中央亮纹的宽度。 * 分辨率极限:讨论了显微镜和天文望远镜的分辨率极限,并指出衍射是限制光线概念的根本原因。 * 菲涅耳距离:介绍了光束在传播距离达到菲涅耳距离(a²/λ)之前,衍射效应不明显。 3. **干涉 (Interference)** * 杨氏双缝实验 (Young's Double Slit Experiment):解释了双缝干涉现象,并给出了条纹间距的表达式。 * 相干光源 (Coherent Sources):强调了产生持续干涉的条件是光源的频率相同且相位差稳定。 * 条纹宽度:指出双缝(间隔为 d)产生的条纹角间隔为 λ/d。 4. **偏振 (Polarization)** * 定义:自然光(如太阳光)是未偏振的,其电矢量在垂直于传播方向的平面内随机振动。 * 偏振光产生: * **偏振片 (Polaroid)**:只能透射特定方向(偏振轴方向)的电矢量分量,产生线偏振光。 * **布儒斯特角 (Brewster's Law)**:光在特定入射角(布儒斯特角)发生反射时,反射光是完全偏振的。 * **散射**:光在垂直方向散射时也会产生偏振。 * 应用:介绍了线偏振光及其在透镜、滤光片等方面的应用,例如观察通过两个旋转偏振片的强度变化。 **总结要点:** * 惠更斯原理是理解波前传播和衍射的基础。 * 干涉是叠加原理的直接结果,需要相干光源。 * 衍射限制了光学仪器的分辨率。 * 偏振是光的一种重要特性,有多种产生方式和应用。
Wave OpticsWave optics: Wave front and Huygen's principle, reflection and refraction of plane wave at a plane surface using wave frontsProof of laws of reflection and refraction using Huygen's principleInterference Young's double slit experiment and expression for fringe width, coherent sources and sustained interference of lightDiffraction due to a single slit, width of central maximumResolving power of microscopes and astronomical telescopesPolarisation, plane polarised light Brewster's law, uses of plane polarised light and PolaroidsSUMMARY1. Huygens' principle tells us that each point on a wavefront is a source of secondary waves, which add up to give the wavefront at a later time. 2. Huygens' construction tells us that the new wavefront is the forward envelope of the secondary waves. When the speed of light is independent of direction, the secondary waves are spherical. The rays are then perpendicular to both the wavefronts and the time of travel is the same measured along any ray. This principle leads to the well known laws of reflection and refraction. 3. The principle of superposition of waves applies whenever two or more sources of light illuminate the same point. When we consider the intensity of light due to these sources at the given point, there is an interference term in addition to the sum of the individual intensities. But this term is important only if it has a non-zero average, which occurs only if the sources have the same frequency and a stable phase difference. 4. Young's double slit of separation d gives equally spaced fringes of angular separation λ/d. The source, mid-point of the slits, and central bright fringe lie in a straight line. An extended source will destroy the fringes if it subtends angle more than λ/d at the slits.5. A single slit of width a gives a diffraction pattern with a central maximum. Two stars closer than this give strongly overlapping images. Similarly, a microscope objective subtending angle 2β at the focus, in a medium of refractive index n, will just separate two objects spaced at a distance λ/(2n sin β), which is the resolution limit of a microscope. Diffraction determines the limitations of the concept of light rays. A beam of width a travels a distance a 2/λ, called the Fresnel distance, before it starts to spread out due to diffraction. 6. Natural light, e.g., from the sun is unpolarised. This means the electric vector takes all possible directions in the transverse plane, rapidly and randomly, during a measurement. A polaroid transmits only one component (parallel to a special axis). The resulting light is called linearly polarised or plane polarised. When this kind of light is viewed through a second polaroid whose axis turns through 2π, two maxima and minima of intensity are seen. Polarised light can also be produced by reflection at a special angle (called the Brewster angle) and by scattering through π/2 in the earth's atmosphere.