Which of the following is a base according to lowry-bronsted concept ?
$ I ^ - $ can accept protons and hence is a base.
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Which of the following is a base according to lowry-bronsted concept ?
$ I ^ - $ can accept protons and hence is a base.
According to lowry-bronsted concept which one of the following is considered as an acid ?
According to the Lowry-Bronsted concept, an acid is a substance that can donate a proton (H⺠ion). The $H_3O^+$ ion, also known as the hydronium ion, can donate a proton, hence it is considered an acid.
The conjugate acid of $ NH^- _2 $ is
The conjugate acid of a base is formed when the base accepts a proton (H⺠ion). For the base $NH_2^-$ (amide ion), accepting a proton forms $NH_3$ (ammonia), which is the conjugate acid of $NH_2^-$. Therefore, the conjugate acid of $NH_2^-$ is $NH_3$.
conjugate base of hydrazoic acid is
$ N_3 H \rightleftharpoons N_3 ^ - + H^ + Hydrazoic acid N_3 H $
In which of the following reaction $ NH_3 $ acts as acid ?
In the reaction $NH_3 + Na ightarrow NaNH_2 + rac{1}{2} H_2$, ammonia ($NH_3$) donates a proton (Hâº) to form sodium amide ($NaNH_2$), acting as an acid according to the Lowry-Bronsted definition.
Consider the following reactions. (i) $ CO^{2-} _{3} + H_2O \rightleftharpoons H_3CO^- + OH ^ - $ (ii) $ CO_2 + H_2 O \rightleftharpoons H_2 CO_3 $ (iii) $ NH_3 + H_2 O \rightleftharpoons NH_4 OH $ (iv) $ HCl + H_2 O \rightleftharpoons Cl^- + H_3 O^ + $ Which of the pairs of reaction proves that water is amphoteric in character ?
One of the following is a bronsted acid but not a bronsted base :
$ H_2S $ can donate proton but can't accept proton.
The conjugate base in the following reaction $ H_2 SO_4 + H_2 O \rightleftharpoons H_3 O ^ - + HSO_4 ^ - $ are
In the given reaction, $H_2SO_4$ donates a proton to $H_2O$, forming $HSO_4^-$ and $H_3O^+$. Therefore, $HSO_4^-$ is the conjugate base of $H_2SO_4$ and $H_2O$ is the conjugate base of $H_3O^+$.
With increase in temperature, ionic product of water
With increase in temperature, ionic product increases. because self ionisation of is endothermic process
EDTA is a/an
EDTA is Arrhenius acid as it can give $ H ^ + $ ions in aqueous solution, bronsted base. as it can accept protons and lewis base because N and O in it can donate lone paris of electrons.
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