The solubility of a salt of weak acid (AB) at pH 3 is Y×10^−3 mol L^−1. The value of Y is ____. (Given that the value of solubility product of AB (Ksp)=2×10^−10 and the value of ionization constant of HB (Ka)=1×10^−8) At 90∘C pure water has [H3O+] as 10^−6 mol L^−1. What is the value of Kw at 90^∘C ? June 2, 2021 Category: Chapter 7 - Equilibrium , Chemistry , JEE Adv and Mains Chemistry 41 Years Solved Video Solutions 1979 - 2019 , Facebook Messenger WhatsApp Share this:TwitterFacebook Related