A Bronsted-Lowry Acid Donates H+ ions
The Bronsted-Lowry theory is that acids and bases are defined by the way they react with each other. Liquid ammonia and acetic acid are examples.
The Brønsted-Lowry theory is a concept in chemistry that defines acids as proton donors and bases as proton acceptors. This theory provides a more generalized definition of acids and bases compared to the Arrhenius theory. It forms the basis for understanding acid-base reactions and proton transfer mechanisms.
the answer is true
A Lewis acid accepts electron pairs.
true
Yes, it is true.
true
A Bronsted-Lowry Acid Donates H+ ions
True. Every Brønsted-Lowry acid can also act as a Lewis acid because both definitions involve the donation of a proton or an electron pair, respectively. A Brønsted-Lowry acid donates a proton, while a Lewis acid accepts an electron pair.
true
well the thing is they actually dont. many people believe that there is acid but it is not true
True. It is possible to have a concentrated solution of a weak acid or base, as the concentration of a solution refers to the amount of solute dissolved in a solvent, regardless of the strength of the acid or base. The degree of dissociation may be low, but the concentration can still be high.