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  2. Bohr model - Wikipedia

    en.wikipedia.org/wiki/Bohr_model

    In atomic physics, the Bohr model or Rutherford–Bohr model was the first successful model of the atom. Developed from 1911 to 1918 by Niels Bohr and building on Ernest Rutherford 's nuclear model , it supplanted the plum pudding model of J J Thomson only to be replaced by the quantum atomic model in the 1920s.

  3. Bohr model of the chemical bond - Wikipedia

    en.wikipedia.org/wiki/Bohr_model_of_the_chemical...

    Model of the hydrogen molecule and its axial projection. In addition to the model of the atom, Niels Bohr also proposed a model of the chemical bond.. He proposed this model first in the article "Systems containing several nuclei" [1] - the third and last of the classic series of articles by Bohr, published in November 1913 in Philosophical Magazine.

  4. Rutherford model - Wikipedia

    en.wikipedia.org/wiki/Rutherford_model

    After Rutherford's discovery, subsequent research determined the atomic structure which led to Rutherford's gold foil experiment. Scientists eventually discovered that atoms have a positively charged nucleus (with an atomic number of charges) in the center, with a radius of about 1.2 × 10 −15 meters × [atomic mass number] 1 ⁄ 3 .

  5. File:Rutherford atomic planetary model.svg - Wikipedia

    en.wikipedia.org/wiki/File:Rutherford_atomic...

    English: Basic diagram (rutherford ) of the atomic planetary model (nitrogen): electrons in green and nucleus in red. Deutsch: Atommodell nach Rutherford für Stickstoff, Elektronen: grün, Atomkern: rot

  6. Nitrogen - Wikipedia

    en.wikipedia.org/wiki/Nitrogen

    Molecular orbital diagram of dinitrogen molecule, N 2. There are five bonding orbitals and two antibonding orbitals (marked with an asterisk; orbitals involving the inner 1s electrons not shown), giving a total bond order of three. Atomic nitrogen, also known as active nitrogen, is highly reactive, being a triradical with

  7. Atomic orbital - Wikipedia

    en.wikipedia.org/wiki/Atomic_orbital

    Three of these planes are the xy-, xz-, and yz-planes—the lobes are between the pairs of primary axes—and the fourth has the center along the x and y axes themselves. The fifth and final d orbital consists of three regions of high probability density: a torus in between two pear-shaped regions placed symmetrically on its z axis. The overall ...

  8. Molecular orbital diagram - Wikipedia

    en.wikipedia.org/wiki/Molecular_orbital_diagram

    With nitrogen, we see the two molecular orbitals mixing and the energy repulsion. This is the reasoning for the rearrangement from a more familiar diagram. The σ from the 2p is more non-bonding due to mixing, and same with the 2s σ. This also causes a large jump in energy in the 2p σ* orbital. The bond order of diatomic nitrogen is three ...

  9. Trinitrogen - Wikipedia

    en.wikipedia.org/wiki/Trinitrogen

    Trinitrogen also known as the azide radical is an unstable molecule composed of three nitrogen atoms. Two arrangements are known: a linear form with double bonds and charge transfer, and a cyclic form. Both forms are highly unstable, though the linear form is the more stable of the two. [1]