If (4+sqrt(15))^n=I+f,where n is an odd ...

If `(4+sqrt(15))^n=I+f,`where `n` is an odd natural number, `I` is an integer and ,then a.`I`is an odd integer b. `I`is an even integer c. `(I+f)(1-f)=1` d. `1-f=(4-sqrt(15))^n`

A

I is an odd integer

B

I is an even nteger

C

`(I + f) (I - f) = 1`

D

`I - f = (4 - sqrt(15))^(n)`

Text Solution

Verified by Experts

The correct Answer is:

A, C, D

`I + f = (4+sqrt(5))^(n)`
Let `f'=(4+sqrt(15))^(n)`, then `0 lt f' lt 1`
`I+f = .^(n)C_(0)4^(n) + .^(n)C_(1)4^(n-1)sqrt(15)+.^(n)C_(2)4^(n-2)15+.^(n)C_(3)4^(n-3)(sqrt(5))^(3)+"......"`
`f' = .^(n)C_(0)4^(n)-.^(4)C_(1)4^(n-1)sqrt(15)+.^(n)C_(2)4^(n-2).15-.^(n)C_(3) 4^(n-3)(sqrt(15))^(3) + "......"`
`:. I + f + f' = 2(.^(n)C_(0)4^(n)+.^(n)C_(2)4^(n-2)xx15+"....")` = even integer
`:'0 lt f+ f' lt 2 rArr f + f' rArr 1 - f = f'`
Thus, I is odd integer, Now,
`I + f = f' = (4-sqrt(15))^(n)`
`(1+f) (1-f) = (I+f)f' = 1`

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