(a)
Interpretation:
The velocity of the given
Concept Introduction:
Energy is the capacity to do work or transfer heat where work is the movement of a body using some force. The SI unit of energy is joule (
Where
(a)
![Check Mark](/static/check-mark.png)
Answer to Problem 3.8QP
The velocity of an electron that has
Explanation of Solution
To find: Determine the velocity of an electron that have
Kinetic energy (in joule) is calculated using the formula:
Where
By considering the given problem, the mass of an electron
The mass of an electron in kilograms is
Therefore, the velocity of an electron that has
(b)
Interpretation:
The velocity of the given atoms, the mass and identity of a subatomic particle should be calculated in the given statement by using the equation of kinetic energy
Concept Introduction:
Energy is the capacity to do work or transfer heat where work is the movement of a body using some force. The SI unit of energy is joule (
Where
(b)
![Check Mark](/static/check-mark.png)
Answer to Problem 3.8QP
The velocity of a neutron that has
Explanation of Solution
To find: Determine the velocity of a neutron that has
Kinetic energy (in joule) is calculated using the formula:
Where,
By considering the given problem, the mass of a neutron
The mass of a neutron in kilograms is
Therefore, the velocity of a neutron that has
(c)
Interpretation:
The velocity of the given atoms, the mass and identity of a subatomic particle should be calculated in the given statement by using the equation of kinetic energy
Concept Introduction:
Energy is the capacity to do work or transfer heat where work is the movement of a body using some force. The SI unit of energy is joule (
Where
(c)
![Check Mark](/static/check-mark.png)
Answer to Problem 3.8QP
The mass and identity of a subatomic particle moving at
Explanation of Solution
To find: Determine the mass and identity of a subatomic particle moving at
Kinetic energy (in joule) is calculated using the formula:
Where
By considering the given problem, the mass of a
The mass of a subatomic particle in kilograms is
If the mass in
By substituting the mass value in the above expression, the identity of a subatomic particle will be determined as follows:
The subatomic particle with a mass of
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Chapter 3 Solutions
CHEMISTRY: ATOMS FIRST VOL 1 W/CONNECT
- The decomposition of dinitrogen pentoxide according to the equation: 50°C 2 N2O5(g) 4 NO2(g) + O2(g) follows first-order kinetics with a rate constant of 0.0065 s-1. If the initial concentration of N2O5 is 0.275 M, determine: the final concentration of N2O5 after 180 seconds. ...arrow_forwardDon't used hand raitingarrow_forwardCS2(g) →CS(g) + S(g) The rate law is Rate = k[CS2] where k = 1.6 × 10−6 s−¹. S What is the concentration of CS2 after 5 hours if the initial concentration is 0.25 M?arrow_forward
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- Part VII. Below are the 'HNMR, 13 C-NMR, COSY 2D- NMR, and HSQC 2D-NMR (similar with HETCOR but axes are reversed) spectra of an organic compound with molecular formula C6H1003 - Assign chemical shift values to the H and c atoms of the compound. Find the structure. Show complete solutions. Predicted 1H NMR Spectrum 4.7 4.6 4.5 4.4 4.3 4.2 4.1 4.0 3.9 3.8 3.7 3.6 3.5 3.4 3.3 3.2 3.1 3.0 2.9 2.8 2.7 2.6 2.5 2.4 2.3 2.2 2.1 2.0 1.9 1.8 1.7 1.6 1.5 1.4 1.3 1.2 1.1 f1 (ppm) Predicted 13C NMR Spectrum 100 f1 (ppm) 30 220 210 200 190 180 170 160 150 140 130 120 110 90 80 70 -26 60 50 40 46 30 20 115 10 1.0 0.9 0.8 0 -10arrow_forwardQ: Arrange BCC and Fec metals, in sequence from the Fable (Dr. R's slides) and Calculate Volume and Density. Aa BCC V 52 5 SFCCarrow_forwardNonearrow_forward
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