A compound.
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An example of a Brønsted-Lowry base is ammonia (NH3). It can accept a proton (H+) to form the ammonium ion (NH4+).
NH3 is an example of a Lewis base as it can donate a pair of electrons to form a bond with a Lewis acid. Lewis bases are electron pair donors, while Lewis acids are electron pair acceptors.
Brønsted-Lowry base is a species with the ability to gain, or "accept," a hydrogen cation (proton). NH3 is an example. H2O + NH3 <====> OH− + NH4+ "<====> here indicates reversible arrow"
The Lewis bases are electrons pair donor species. The best example of Lewis base is ammonia NH3
the bronstead-lowry definition of a base is a proton acceptor...
Ammonia (NH3) is an example.
An example of a Brønsted-Lowry base is ammonia (NH3). It can accept a proton (H+) to form the ammonium ion (NH4+).
An example would be NH3
NH3 is an example of a Lewis base as it can donate a pair of electrons to form a bond with a Lewis acid. Lewis bases are electron pair donors, while Lewis acids are electron pair acceptors.
Brønsted-Lowry base is a species with the ability to gain, or "accept," a hydrogen cation (proton). NH3 is an example. H2O + NH3 <====> OH− + NH4+ "<====> here indicates reversible arrow"
nh3 for base nd zncl2 for acid
nh3 for base nd zncl2 for acid
The Lewis bases are electrons pair donor species. The best example of Lewis base is ammonia NH3
A simple example is the decomposition of ammonium chloride:NH4Cl---------------------NH3 + HCl
Four. Ammonia (NH3) is an example.
In polar solvents it dissolves.As an example water.
NH3 is NOT an acid. NH3 is Ammonia. In solution it acts as a weak base.