The count of bacteria in a certain experiment was increasing at the rate of 2% per hour. Find the bacteria at the end of 2 hours if the count was initially 500000.

Count of bacteria, P = 500000

Time, n = 2 hours

Increasing rate, R = 2% per hour

Now,

Amount (A) = P (1 + R/100)ⁿ [Where, A = Amount with compound interest

P = Present value

R = Annual interest rate

n = Time]

∴ Count of bacteria = P (1 + R/100)ⁿ

= 500000 (1 + 2/100)²

= 500000 (102/100)²

= 500000 × 102/100 × 102/100

= 50 × 102 × 102

= 520200

∴ Count of bacteria at the end of 2 hours is 520200.