Let the coefficients of x–1 and x–3 in the expansion of
\((2x^{\frac{1}{5}} - \frac{1}{x^{\frac{1}{5}}} )^{15} , x > 0\)be m and n respectively. If r is a positive integer such that
\(mn² = ^{15}C_r.2^r\)
then the value of r is equal to ______.
Let the coefficients of x–1 and x–3 in the expansion of
\((2x^{\frac{1}{5}} - \frac{1}{x^{\frac{1}{5}}} )^{15} , x > 0\)be m and n respectively. If r is a positive integer such that
\(mn² = ^{15}C_r.2^r\)
then the value of r is equal to ______.
Correct Answer: 5
Solution and Explanation
The correct answer is 5
Given : Expansion is \((2x^{\frac{1}{5}} - \frac{1}{x^{\frac{1}{5}}} )^{15}\)
Now , the general term of given expansion is
\(T_{p+1} = (-1)^{p}\)\(^{15}C_p 2^{15-p} (x^{\frac{1}{5}})^{15-p}.(\frac{1}{x^{\frac{1}{5}}})^p\)
\(= (-1)^p\) \(^{15}C_p 2^{15-p} . x^{\frac{15-2p}{5}}\)
For coefficient of \(x^{-1}, \frac{15-2p}{5} = -1\)
⇒ p = 10
Therefore , \(m= ^{15}C_{10} 2^5\)
⇒ p = 15
\(∴ n = - ^{15}C_{15} 2^0 = -1\)
Now , mn2 = 15C1025
⇒ mn² = 15C5 25
⇒ 15Cr 2r = 15C5 25
⇒ r = 5
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Concepts Used:
Binomial Expansion Formula
The binomial expansion formula involves binomial coefficients which are of the form
(n/k)(or) nCk and it is calculated using the formula, nCk =n! / [(n - k)! k!]. The binomial expansion formula is also known as the binomial theorem. Here are the binomial expansion formulas.
This binomial expansion formula gives the expansion of (x + y)n where 'n' is a natural number. The expansion of (x + y)n has (n + 1) terms. This formula says:
We have (x + y)n = nC0 xn + nC1 xn-1 . y + nC2 xn-2 . y2 + … + nCn yn
General Term = Tr+1 = nCr xn-r . yr
- General Term in (1 + x)n is nCr xr
- In the binomial expansion of (x + y)n , the rth term from end is (n – r + 2)th .