Let a = 111 `cdots ` 1 (55 digits ) ,
b=1 + 10 +`10^(2)+ cdots+ 10^(4)`
c=`1+10^(5) +10^(10)+ 10^(15) + cdots+ 10^(50)` then

The reaction of ozone with oxygen atoms in the presence of chlorine atoms can occur by a two step process shown below: i. O_(3)(g) + Cl^(*)(g) to O_(2)(g) + ClO^(*) , k_(1) = 5.2 xx 10^(9) "L mol"^(-1)s^(-1) (ii) ClO^(*) (g) + O^(*)(g) to O_(2)(g) + Cl^(*), k_(II) = 2.6 xx 10^(10) L "mol"^(-1)s^(-1) The closest rate constant for the overall reaction O_(3)(g)+O^(.)(g)rarr2O_(2)(g) is : 1.4 xx 10^(20) L mol^(-1) s^(-1) , 3.1 xx 10^(10) L mol^(-1) s^(-1) , 5.2 xx 10^(9) L mol^(-1) s^(-1) , 2.6 xx 10^(10) L mol^(-1) s^(-1)

Find the sum of n terms of the series 1 + 4/5 + 7//5^(2) + 10//5^(3)+ cdots

int( 10 x^9+10^x log _e 10)/(x^(10)+10^x) d x equal a) 10^x-x^(10)+C b) 10^x+x^(10)+C c) (10^x-x^(10))^-1+C d) log (10^x+x^(10))+C

Let a_(1), a_(2), cdots and b_(1), b_(2) cdots be arithmetic progression such that a_(1) = 25, b_(1) = 75 and a_(100) + b_(100) = 100 , then the sum of first hundred terms of the progression a_(1) + b_(1), a_(2) + b_(2), cdots is

K_(sp) of the salt AB_(2) at 298 K is 4 times 10^(-11)M . A precipitate of AB_(2) is formed when equal volumes of which of the following solutions of A^(2+) and B^(-) are mixed? A) 2 times 10^(-4)M" "A^(2+) and 2 times 10^(-4)M" "B^(-)" B) 2 times 10^(-5)M" "A^(2+) and 2 times 10^(-3)M" "B^(-) C) 2 times 10^(-2)M" "A^(2+) and 2 times 10^(-3)M" "B^(-)

Choose the correct answer int((10x^9+10^x log10)/(x^(10) + 10^x)) dx

Let A=[(5,0),(1,0)] and B= [(0,5),(-1,0)] If 4A +5B -C =0 then C is