General Chemistry

1EK: General Chemistry

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Group 17: ____ are diatomic gases at room temperature.

Group 17: ____ is a diatomic liquid at room temperature.

Group 17: Bromine is a diatomic ____ at room temperature.

Group 17: ____ is a diatomic solid at room temperature.

Group 17: Iodine is a diatomic ____ at room temperature.

When in compounds, flourine always has an oxidation state of ____.

All of the halogens can combine with hydrogen to form ____.

All of the halogens can combine with ____ to form gaseous hydrogen halides.

The halogens react with metals to form ionic halides, such as ____.

The halogens react with metals to form ____, such as NaCl.

The halogens react with ____ to form ionic halides, such as NaCl.

Unlike other elements, the noble gases are normally found in nature as ____ atoms.

Unlike other elements, the ____ are normally found in nature as isolated atoms.

The elements that tend to exist as diatomic molecules are ____.

Moving across a period, the radius ____ because each subsequent element has an additional proton, which pulls more strongly on the surround…

Moving across a period, the radius decreases because each subsequent element has an additional proton, which ____

The ____ is the distance from the center of the nucleus to the outermost electron.

The atomic radius is the distance from t____.

Atomic radius increases going down a group, because ____

____ is the only periodic trend that increases moving down a group and across a period from right to left.

____ describes the electrostatic force between charged objects.

Coulomb's law describes ____

____ force is the force between charged objects.

Electrostatic force is the force between ____.

____ occurs due to the repulsive forces between electrons.

Shielding occurs due to the ____.

The amount of charge felt by the most recently added electron is called ____.

The amount of charge felt by ____ is called the effective nuclear charge (Zeff).

Since Zeff increases from left to right, ____

Zeff is ____ related to shielding of electrons.

The more negative the charge of an ion, the more repulsive forces it has, in turn giving it a bigger radius, because of a lower ____.

The more negative the charge of an ion, the more repulsive forces it has, in turn giving it a bigger ____, because of a lower Zeff.

The more negative the charge of an ion, the more ____ forces it has, in turn giving it a bigger radius, because of a lower Zeff.

The more ____ the charge of an ion, the more repulsive forces it has, in turn giving it a bigger radius, because of a lower Zeff.

____ is the energy needed to detach an electron from an atom.

Ionization energy is the energy needed to ____

____ is the energy necessary to remoe an electron neutral atom in its gaseous state to form a +1 cation.

First ionization energy is the energy necessary to remoe an electron neutral atom in its gaseous state to form a ____.

The energy required for the removal of a second electron from the same atom to form a +2 cation is called ____.

The energy required for the removal of a second electron from the same atom to form a ____ is called the second ionization energy.

How does Coloumb's law explain the greater effect of increasing radius over increasing Zeff down a group?____

Pulling the outermost electron ____

Holding the outermost electron ____

Atoms with ____ will pull more strongly on electrons in covalent bonds, increasing electronegativity across a period.

Atoms with greater Zeff will pull more strongly on electrons in covalent bonds, increasing ____ across a period.

Atoms with ____ Zeff will more readily accept another electron, so electron affinity increases across a period.

Atoms with stronger Zeff will more readily accept another electron, so ____ increases across a period.

____ is the tendency of an atom to attract electrons shared in a covalent bond.

Electronegativity is the tendency of an atom to ____

When two atoms have different electronegativities, they share electrons unequally, causing ____.

When two atoms have different ____, they share electrons unequally, causing polarity.

The most commonly used measurement of electronegativity is ____.

The most commonly used measurement of ____ is the Pauling scale.

The most electronegative atom is ____.

Atoms that are better at sharing electrons have ____ electronegativity.

The electronegativity of hydrogen falls between that of ____.

The electronegativity of ____ falls between that of boron and that of carbon.

Boron and the elements to the left of boron will carry a ____ charge when bonded to hydrogen.

____ will carry a partial positive charge when bonded to hydrogen.

Carbon and the elements to the right of carbon will carry a ____ charge when bonded to hydrogen.

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