Browse · MATH Print → jmc counting and probability intermediate Problem What is the coefficient of x5 in the expansion of (2x+3)7? Solution — click to reveal Using the Binomial Theorem, we know that the x5 term of the expansion is (57)(2x)5(3)7−5=(21)(32x5)(9)=(21)(32)(9)x5=6048x5. Final answer 6048 ← Previous problem Next problem →