Из предложенного списка выберите все вещества, одна молекула которых состоит из шести атомов. As2O5

HNO3

HClO4

CCl4

PF5

не знаю что писать но спс за Hit the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are notified that any dissemination distribution or copying of this email and any attachments is intended only for the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you are not the intended recipient you.

.

Дано:
m(Na)=3,2 г
m(CH3OH + C2H5OH) = 5 г
w(CH3OH) = 40%=0,4
V(H2) - ?
Решение.
m(CH3OH) = 5 г*0,4 = 2 г
М(СН3ОН) = 32 г/моль
n(CH3OH) = 2 г/32 г/моль = 0,0625 моль
m(C2H5OH) = 5 г - 2 г = 3 г
М(С2Н5ОН) = 46 г/моль
n(C2H5OH) = 3 г/46 г/моль =0,0652 моль
M(Na) = 23 г/моль
n(Na) = 3,2 г/23 г/моль = 0,14 моль
Рассчитаем кол-во в-ва и массу натрия, которое необходимо для проведения реакции: n(Na) = 0,0625 моль + 0,0652 моль = 0,1277 моль
m(Na) = 23 г/моль* 0,1277 моль = 2,94 г, т.е. натрий взят в избытке.

2СН3ОН + 2Na = 2CH3ONa + H2

2C2H5OH + 2Na = 2C2H5ONa + H2
n(H2) = (n(CH3OH) + n(C2H5OH))/2
n(H2) = 0,1277 моль/2 = 0,06385 моль
V(H2) = 22.4 л/моль*0,06385 моль = 1,43 л
ответ: 1,43 л