Answer to Question #98963 in Microbiology for amir

a)"CH_2O+O_2->CO_2+H_2O"

b)No of moles of "O_2=(10\u00d725\u00d710^{-3})\/32=0.0078moles"

No of moles of "CH2O =10\/30.03=0.233moles"

"CH_2O+O_2->CO_2+H_2O"

0.233mole 0.0078moles

No of moles of CH2O "left= 0.233-0.0078=0.2252"

No of moles of Oxygen is less.Oxygen is limiting reagent.So,the jug becomes anaerobic.

c)"2CH_2O + SO_4^{2- }+ 2H^+ -> H_2S + 2CO_2 + 2H_2O"

0.2252 15×0.2252/10⁶

0.2252-2×3.37×10^-6 0

0.2252 0

"4NO_3^-+ 5CH_2O ->2N_2O + 5CO_2 + 5H_2O"

0.2252 2×0.2252/10⁶

0.2252-4.5×4×10^-7/5 0

0.2252moles

At equilibrium,"NO_3^-" and "SO_4^{2-}" are completely exhausted.

d)"mass=0.2252\u00d730.03=6.763g" of "CH_2O"

Total mass of mouse "left =(3+6.763)g=9.763g" of dry weight of mouse is left.