Answer:
Be. Beryllium
Explanation:
Answer:
61 grams
Explanation:
If the number of moles of CO₂ in the balloon is given to be 3.5 moles, the mass of CO₂ in the balloon will be
number of moles = mass ÷ molar mass
Hence, mass = number of moles × molar mass
Molar mass of CO₂ is 44g. This is 44 because the atomic mass of carbon is 12 while that of oxygen is 16. Thus, 12 + (16 × 2) = 44 g
mass= 3.5 moles × 44g
mass = 154g (which is the initial mass)
When the mass of CO₂ in the 25.5 liter balloon is 154g, the mass of CO₂ in the balloon when the volume of CO₂ in the balloon is 15.4 liter will be X
To get X,
25.5 L ⇒ 154g
15.4 L ⇒ X
cross-multiply, and
X = (15.4 × 154) ÷ 25.5
X = 93.00 grams (which is the final mass)
93.00 grams of CO₂ was left in the balloon, hence the mass of CO₂ that escaped will be: initial mass minus final mass
= 154g - 93g
= 61g
The mass of CO₂ that escaped is 61 grams
(2) grams of NaCl per liter of solution
(3) moles of NaCl per liter of water
(4) moles of NaCl per liter of solution
Answer:
The correct option is (4)
Explanation:
Molarity (M) is generally defined as the number of moles of a solute per liter of the solution.
The formula for molarity (from the definition above) is
M = number of moles (n) ÷ volume (in liters or dm³)
The unit for molarity is mol/L or mol/dm³
From the above, it can be deduced that the molarity of an aqueous solution of common salt (NaCl) is the number of moles of NaCl per liter of the salt solution.
B 1.5 X 1-^-5 ppm
C 0.061 ppm
D 15 ppm
Answer: The correct option is C.
Explanation: ppm is used to measure the concentration of solute in a given volume of solution. ppm is basically parts per million.
Mathematically,
We are given:
Mass of methanol = (Conversion Factor : 1g = 1000mg)
Volume of solution = 250 mL = 0.250L (Conversion Factor : 1L = 1000mL)
Putting values in above equation, we get:
Concentration of methanol = 0.062ppm
Hence, the correct option is C.
b. the energy required to remove an electron from the element in its gaseous state
c. the energy released by the element in forming an ionic bond
d. the energy released by the element upon receiving an additional electron
e. none of the above
The ionization energy is energy required to remove an electron from element in it's gaseous state.
Ionization energy is defined as the minimum energy required to remove an electron from its valence shell of an isolated gaseous atom,positive ion or molecule.Ionization energy is positive for neutral atoms from which it can be concluded that ionization is an endothermic process.
Closer are the valence electrons to nucleus ,higher is the ionization energy.It is usually expressed in electron volts or joules.Ionization energy increases from left to right in a period as more energy is required to remove electrons with small atomic size.
Ionization energy decreases down the group as atomic size increases due to which electrons are easily lost from the valence shell.
Learn more about ionization energy ,here:
#SPJ6