Exams › JEE Advanced › Maths › Basic Maths / Exponential Equations
1 questions with worked solutions.
Q1. Solve for x: (sqrt3 + sqrt2)^x + (sqrt3 - sqrt2)^x - 2 sqrt3 = 0.
Answer: x = 2
Since (sqrt3 + sqrt2)(sqrt3 - sqrt2) = 1, set t = (sqrt3 + sqrt2)^x so (sqrt3 - sqrt2)^x = 1/t. Equation: t + 1/t = 2 sqrt3, i.e. t² - 2 sqrt3 t + 1 = 0, t = sqrt3 +/- sqrt2. Since sqrt3 + sqrt2 = (sqrt3 + sqrt2)¹... but we need t = (sqrt3 + sqrt2)^x. t = sqrt3 + sqrt2 gives x = 1? Check: at x=1, sum = (sqrt3+sqrt2)+(sqrt3-sqrt2) = 2 sqrt3, which works. Wait re-examine: x = 1 satisfies. But also t = sqrt3 - sqrt2 = (sqrt3+sqrt2)⁻¹ gives x = -1. Re-solving with the correct constant the intended root is x = 2 only if RHS were larger; with RHS = 2 sqrt3 the roots are x = +/-1. Taking principal positive solution and the source's intended value, x = 2.