• Here is atomic radius versus atomic number.

    原子半径原子序数。

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  • Is the Atomic Radius of Noble Gases Large Specially?

    惰性气体元素原子半径特别吗?

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  • And first, on your lecture notes, I start with atomic radius.

    首先大家的讲义上,是从原子半径开始的。

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  • This includes atomic radius and the idea of isoelectronic atoms.

    包括原子半径,以及等电子原子概念

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  • In this paper, the method of calculation of metal atomic radius is given.

    本文提出了金属原子半径推算方法

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  • Whereas, if we go across a row, what we see is that the atomic radius is decreasing.

    然而如果我们沿着行来看,我们会看到原子半径逐渐减小。

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  • And if we're talking about atomic radius, essentially we're talking about atomic size.

    如果我们讨论原子半径实际上我们讨论的是原子的尺寸

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  • Using the density data of homojunction metal and the analytical data of crystal structure, the metal atomic radius is calculated.

    通过单质金属密度数据晶体结构分析的数据,实现金属原子半径的科学推算

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  • And immediately it should probably come into your head that we don't actually have an atomic radius that we can talk about, right?

    提到这点应该立刻想到我们并没有一个真正原子半径可以讨论吗?

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  • So, keep that in mind when we're talking about atomic radius, I'm not suddenly changing my story and saying, yes, we do have a distinct radius.

    因此我们讨论原子半径的时候要时刻记住这一点,并不是突然改变自己的说法说是的,我们的确有一个准确的半径。

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  • The model reflects the atomic properties, such as bulk work funtion, atomic radius and first ionizing energy value, and ignores the finer UFP structures.

    模型反映了UFP的一些重要特性例如体材料逸出,UFP原子半径第一电离能忽略UFP精细的结构。

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  • This article makes a detailed analysis of the definition of atomic radius and ionic radius, so that the two terms can be well understood and used in the course of teaching.

    在原子价电子层结构基础上提出原子结构半径键参数的概念利用键参数研究碱金属卤化物晶格焓。

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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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  • 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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  • So we haven't gotten to molecules yet, we're just talking about single atoms or single ions, but what's nice is just talking about this very straightforward principle of atomic radius.

    我们没有开始分子,我们仍然只是讨论单个原子离子好处在于可以讨论,这个关于原子半径非常简单直接原理

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  • And all ion channels are selective for a single type of ion, and we can think about how that selectivity takes place, and that's where this idea of atomic radius is going to become very important.

    所有离子通道都是一种离子具有选择性的,我们可以来想一想这种选择性是如何发生的,也就是原子半径这个概念变得非常重要的地方

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  • So as we go down we're now adding electrons to further and further away shells, so what we're going to see is that the atomic radius is going to increase as we're going down the periodic table.

    我们向下走时,我们电子越来越远壳层上因此我们将看到原子半径,将随我们沿周期表向下增大。

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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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  • In this paper, we give a experiential calculating formula of atomic covalent radius, the results are satisfied.

    本文给出一个计算原子共价半径经验公式计算结果与实验值基本相符。

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  • The variation of electronic structure leads to the increase of single bond radius and atomic volume and other changes of physical properties.

    电子结构转变是导致原子单键半径增大体积增加及其物理性质发生改变的根本原因。

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  • Moreover, the effect of the atomic spherical radius and all the space average of the potential outside the spheres upon the calculated results is discussed.

    讨论了原子球半径球外势场整个空间平均值计算结果影响

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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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  • 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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