• They are the radius of the orbit, the energy of the system and the velocity of the electron, and I am just going to present you the solutions.

    它们轨道半径系统能量以及电子速度接下来你们展示解法

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  • We'll then take a turn to talking about the periodic table, we'll look at a bunch of periodic trends, including ionization energy, electron affinity, electronegativity and atomic radius.

    然后我们开始元素周期表,我们看到很多周期性规律比如电离能电子亲和能电负性以及原子半径

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  • In other words, just want to know where the electron is somewhere within the shell radius of the ground state of atomic hydrogen anywhere.

    换言之我只是知道电子在哪,可以在氢原子基态半径里面任何地方

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  • R This is the radius of the orbit in which the electron travels.

    距离,So,,this,distance,here,is,R。,这是轨道半径,就是电子运动的地方。

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  • Because what it tells is that we can figure out exactly what the radius of an electron and a nucleus are in a hydrogen atom.

    我们可以准确氢原子电子

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  • We talked about ionization energy, electron affinity, we talked about electronegativity, which is just kind of a combination of the first two, and then ended with atomic radius here.

    我们电离能电子亲和能的,还讲了电性的,也就是两个组合最后讲了原子半径的。

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  • And again, we can define what that most probable radius is, that distance at which we're most likely to find an electron.

    同样的,我们可以定义可能距离这里找到电子的概率最大

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  • It is shown that when the radius of the electron is greater than a critical length, the behavior of the solution is fine, no run-away and pre-acceleration appears.

    结果表明电子半径大于一个临界长度时,方程解表现出良好性质,不会出现奔离预加速的现象。

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  • The radius of the orbit, the energy of the system and the velocity of the electron, I am just going to present you the solutions.

    轨道半径系统能量以及电子速度接下来你们讲解方程的解法。

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  • What I just spent many lectures discussing is the fact that we can not know how far away an electron is from the nucleus, so we can't actually know the radius of a certain atom.

    了这么课时所讨论正是我们可能知道电子原子核有多这一事实因此我们可能知道某个原子半径

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  • The numerical results show that the energy levels of electron are sensitively dependent on the radius of the quantum ring and a minimum exists on account of the parabolic confinement potential.

    数值计算结果显示电子能级敏感依赖量子半径,能级存在极小值,这是由于限制势采用抛物势结果。

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  • But luckily for us, there's a classical equation of motion that will, in fact, describe how the electron and nucleus change position or change their radius as a function of time.

    幸运是,一个经典方程描述电子核子位置或者它们直接的距离是,如何时间变化的。

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  • Two important parameters-balance radiuses and space charge force balance radius is calculated under neutral plasma case. The properties of electron beam transmission are discussed.

    在环内中性等离子体情况下计算了传输过程中的两个重要参量——平衡半径空间电荷平衡半径讨论了电子束传输特点

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  • What you see is that the radius changes with atomic number for constant electron number.

    对于电子的粒子,离子半径随着,原子数的变化而变化

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  • With the increase of the magnetic field on the cathode surface, wave amplitude and equilibrium radius of the electron beam increase;

    随着阴极表面磁场增大电子注腰半径增大,电子注波动增大;

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  • According to the periodic table, we selected 16 kinds of metal ions with different ionic charge, radius and electron shell structure in research.

    根据元素周期表选择了离子电荷半径电子层结构不同16金属离子进行研究。

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  • Metal ion has effects on the surrounding molecules depends on its radius, the charge and the structure of electron shell.

    金属离子周围分子作用主要取决于半径电荷和及电子层结构

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  • It is found that the more the phonon dispersion, the larger is the effective mass, and the smaller the screening radius of electron-hole effective interacting potential.

    随着色散加强,激子的有效质心质量、有效约化质量增大,电子-空穴有效作用屏蔽半径变短

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  • The morphology of multinuclear giant cells (MGC) and osteoclasts (Oc) in rabbit's radius callus had been observed by light microscopy and transmission electron microscopy.

    本文通过光镜透射电镜对家兔桡骨标准分析模型骨内多核巨细胞细胞形态进行了观察

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  • The morphology of multinuclear giant cells (MGC) and osteoclasts (Oc) in rabbit's radius callus had been observed by light microscopy and transmission electron microscopy.

    本文通过光镜透射电镜对家兔桡骨标准分析模型骨内多核巨细胞细胞形态进行了观察

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