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P certainly obeys the octet rule in phosphides: PH3, Na3P etc.

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Which obeys the octet rule PF5 Cs2 BBr3 CO3 2?

PF5 obeys the octet rule as it has 5 bonding pairs of electrons around the central phosphorus atom, satisfying the octet. Cs2 does not follow the octet rule as Cs is in Group 1 and can only form ionic bonds. BBr3 is an exception to the octet rule as boron has only 6 electrons around it due to the empty d orbital. CO3 2- also obeys the octet rule as each oxygen atom has a complete octet.


Does AsH3 follow the octet rule?

No, AsH3 does not follow the octet rule. Arsenic, the central atom in AsH3, can expand its valence shell to hold more than eight electrons in bonding.


Is Pf5 a Lewis acid?

Yes, PF5 is a Lewis acid because it can accept an electron pair to form a new chemical bond. In this case, the phosphorus atom in PF5 can accept an electron pair from a Lewis base.


What is the name of the covalent compound PF5?

The covalent compound PF5 is named phosphorus pentafluoride.


How would you write the formula for phosphorus pentafluoride?

The chemical formula for phosphorus pentafluoride is PF5.


What is the electron geometry of pf5?

The electron geometry (and also, the molecular geometry) of PF5 is Trigonal Bipyramidal.


Is PF5 ionic or molecular?

PF5 is a molecular compound. It consists of covalent bonds between the atoms in the molecule.


What is the name PF5?

It is Phosphorous pentafluoride.


What type of chemical bond does phosphorus and fluorine form?

Phosphorus and fluorine typically form a covalent bond, where the atoms share electrons to achieve a stable octet configuration. This results in the formation of molecules such as phosphorus pentafluoride (PF5).


What type of hybrid orbital is PF3 and PF5?

PF5 :SP3d


What type of hybrid orbital is in pf3 and pf5?

In PF3, the central phosphorus atom uses sp3 hybrid orbitals. In PF5, the central phosphorus atom uses sp3d hybrid orbitals.


What is the oxidation number of pf5?

The oxidation number of PF5 is +5 for phosphorus and -1 for each of the four fluorine atoms, resulting in a total charge of 0 for the compound.