• So what that means is that's how much energy we would have to put into a hydrogen molecule in order to get it to split apart into its two atoms.

    它的意义,就是我们需要向一个氢分子中注入这么大的能量,才能将它分解成两个独立的原子。

    麻省理工公开课 - 化学原理课程节选

  • If we know that this is it the dissociation energy for a hydrogen atom, we can also say the bond strength for hydrogen molecule 424 is 424.

    如果我们知道了这是一个氢分子的离解能,那么我们也可以说氢分子的键的强度,就是。

    麻省理工公开课 - 化学原理课程节选

  • If I look at a homonuclear molecule such as molecular hydrogen, this is perfect sharing.

    如果我用这个测量表测氢分子,完全平均共价的分子。

    麻省理工公开课 - 固态化学导论课程节选

  • That tells you something about the physical chemistry of the molecule; that it's these hydrogen bonds that hold the double strands and I can break those down under certain conditions.

    我们从中可以知道一些,DNA分子的理化特点,双链是由氢键连接在一起,在一定条件下这些氢键可以断裂

    耶鲁公开课 - 生物医学工程探索课程节选

  • So, what this lets us do now is directly compare, for example, the strength of a bond in terms of a hydrogen atom and hydrogen molecule, compared to any kind of molecule that we want to graph on top of it.

    因此,这让我们现在可以做到直接进行比较,比如,将一个氢原子,和一个氢分子的键的强度,与任何其它类型的分子进行比较,我们只需要把它的曲线也画在这幅图上。

    麻省理工公开课 - 化学原理课程节选

  • And then even lower down, we have our bonded hydrogen molecule.

    然后继续降低,我们就有了通过共价键结合的氢分子。

    麻省理工公开课 - 化学原理课程节选

  • And then this means we'll have a total of sigma1s two electrons in our hydrogen molecule, so we can fill both of those into the sigma 1 s orbital, the bonding orbital. We don't have to put anything into the anti-bonding orbital, so that's great.

    我们可以把这两个,都填入,轨道里去,成键轨道,我们不需要把什么放到反键轨道里去,这很好。

    麻省理工公开课 - 化学原理课程节选

  • So, in talking about covalent bonds, we should be able to still apply a more general definition of a chemical bond, which should tell us that the h 2 molecule is going to be lower in energy than if we looked at 2 separate hydrogen atom molecules.

    那么,既然提到了共价键,我们应该还可以,给化学键下一个更普遍的定义,那就是告诉我们氢分子能量应该更低,与两个分开的氢的单原子分子相比。

    麻省理工公开课 - 化学原理课程节选

  • So, let's change our graph where we now have this zero point set as the two individuals hydrogen atoms, and then we see that our h 2 molecule is at the negative of the dissociation energy, or the negative what that bond strength is.

    那么让我们把曲线图中的零点能改到,两个分离的氢原子处,那我们就会看到,氢分子就是负的离解能,或者负的键的强度。

    麻省理工公开课 - 化学原理课程节选

  • Later on, we'll learn that hydrogen as we typically encounter it is H2, the molecule.

    之后我们知道,氢气是H2,是一个分子。

    麻省理工公开课 - 固态化学导论课程节选

  • So let's draw the electron configuration of hydrogen, the molecule, molecular hydrogen.

    让我们来画氢原子的,电子构型,分子,氢分子。

    麻省理工公开课 - 化学原理课程节选

  • In terms of where different atoms are in a molecule, if you have a hydrogen atom or a fluorine atom, you can pretty much guarantee they're always going to be terminal atoms.

    对于不同原子在分子中的位置,如果你有一个氢原子或者一个氟原子,那你基本可以保证,它们总是最末端的原子。

    麻省理工公开课 - 化学原理课程节选

  • So, if we talk about dissociating h 2, we're going from the h 2 molecule, and breaking this bond right in half, so we now have two individual hydrogen atoms here.

    那么,如果我们讨论的是离解氢分子,我们将从氢分子开始,使这个键断裂,一分为二,那么就得到了两个分开的氢原子。

    麻省理工公开课 - 化学原理课程节选

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