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The boiling point is specific for each substance.

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Which molecule, out of the following options, has the highest boiling point?

The molecule with the highest boiling point is the one with the strongest intermolecular forces.


How can one determine the boiling point of a molecule?

The boiling point of a molecule can be determined by looking at its molecular structure and the intermolecular forces present. Molecules with stronger intermolecular forces, such as hydrogen bonding, tend to have higher boiling points. Additionally, the size and shape of the molecule can also affect its boiling point. Experimentally, the boiling point can be measured by heating the substance and recording the temperature at which it changes from a liquid to a gas.


What physical prpeeties do these substatnces have water oil mercury and alcohol?

Water is a polar molecule with a high surface tension and boiling point, oil is nonpolar and tends to be hydrophobic, mercury is a dense liquid metal that has a high density and low boiling point, and alcohol is a polar solvent that can dissolve a wide variety of substances.


How do you determine which molecule has a higher boiling point?

Compounds with Hydrogen bonds (Hydrogen bonded to N,O or F) will tend to have stronger bonds thus a higher BP, then the compounds with a stronger polarity determine bond strength, and finally dispersion forces (Molecular mass) So in conclusion if you have ex. HF and CO2 HF has a higher BP because it has a stronger bond than CO2 (it has a hydrogen bond, while CO2's strongest bond is a polar bond)


Which would have a lower boiling point NO or O2?

O2 because it has more electrons. Because of the higher number of electrons, it has higher dispersion forces (attractive forces). This means that more energy (heat) is required to unstick the molecules into a different state of matter.

Related Questions

Two diatomic molecules with an equal number of electrons and a similar molecular weight are tested for boiling point the difference in boiling point is 150 degrees which is most likely?

The diatomic molecule with stronger intermolecular forces, such as hydrogen bonding or dipole-dipole interactions, will have a higher boiling point. The molecule with weaker intermolecular forces will have a lower boiling point. Therefore, the molecule with the higher boiling point is likely to have stronger intermolecular forces, while the molecule with the lower boiling point is likely to have weaker intermolecular forces.


Which molecule, out of the following options, has the highest boiling point?

The molecule with the highest boiling point is the one with the strongest intermolecular forces.


Does boiling point affect the polarity of water?

Boiling point is not directly related to the polarity of water. The boiling point of water is determined by the strength of intermolecular forces between water molecules. Water is a polar molecule due to its asymmetrical shape and unequal sharing of electrons, which leads to hydrogen bonding and a relatively high boiling point.


Why is it difficult to predict whether NF3 or Cl2O has the higher boiling point?

It is difficult to predict whether NF3 or Cl2O has the higher boiling point because both molecules have different molecular structures and intermolecular forces. NF3 is a polar molecule with a trigonal pyramidal shape, leading to dipole-dipole interactions, while Cl2O is a nonpolar molecule with a bent shape, resulting in weaker London dispersion forces. The strength of these intermolecular forces determines the boiling point of a substance, making it challenging to determine which molecule will have the higher boiling point without experimental data.


Which has a higher boiling point HI or HF?

HF is electronegative compared to O2. HF has delta plus and delta minus creating a dipole moment, it is a polar molecule therefore it has a higher boiling point. O2 which is symmetrical and non polar (looks like O=O) and therefore has no dipole moment.


Are molecules in the compound likely to be polar or non polar if it has a relatively high boiling point compared to molecules with similar mass?

Polar molecules of smilar size to non-polar molecules have a higher melting and boiling point due to their stronger force of attraction.. eg. CO2. which is non-polar, you can can find free floating in the atmosphere whereas a polar molecule such as Water, doesn't boil until it reaches at least 100(Co) degrees. i like dump


Which of the following nonpolar molecules has the highest boiling point (N2C2H4F2O2 or CS2)?

The molecule N2C2H4F2O2 has a higher boiling point.


How can one determine the boiling point of a molecule?

The boiling point of a molecule can be determined by looking at its molecular structure and the intermolecular forces present. Molecules with stronger intermolecular forces, such as hydrogen bonding, tend to have higher boiling points. Additionally, the size and shape of the molecule can also affect its boiling point. Experimentally, the boiling point can be measured by heating the substance and recording the temperature at which it changes from a liquid to a gas.


What molecule has the lowest boiling point Na3P NaF MgO C2H2?

C2H2 (acetylene) has the lowest boiling point among the molecules listed. This is because it is a small, nonpolar molecule with weak intermolecular forces, which results in low boiling point.


Why does water molecule have a high boiling point and melting point?

hydrogen bonding increases the intermolecular attractions and therefore increases the boiling point and melting point.


What physical prpeeties do these substatnces have water oil mercury and alcohol?

Water is a polar molecule with a high surface tension and boiling point, oil is nonpolar and tends to be hydrophobic, mercury is a dense liquid metal that has a high density and low boiling point, and alcohol is a polar solvent that can dissolve a wide variety of substances.


What is the relationship between the boiling point of the alcohol and the number of atoms in its molecules?

The boiling point of an alcohol generally increases with the number of atoms in its molecule. This is because larger alcohol molecules have more complex structures and stronger intermolecular forces, requiring more energy to break these bonds and reach the boiling point.