Argon crystallizes in the face-centered cubic arrangement at 40 K. Given that the atomic radius of argon is 191 pm, calculate the density of solid argon.
Argon crystallizes in the face-centered cubic arrangement at 40 K. Given that the atomic radius of argon is 191 pm, calculate the density of solid argon.
Argon crystallizes in the face-centered cubic arrangement at 40 K. Given that the atomic radius of argon is 191 pm, calculate the density of solid argon.
Expert Solution & Answer
Interpretation Introduction
Interpretation:
Given the atomic radius of solid Argon, its density has to be calculated.
Concept Introduction:
In a crystalline solid, the components are neatly stacked and closely packed in a regular pattern. The components are imagined as spheres. The two major types of close packing of the spheres in the crystal are – hexagonal close packing and cubic close packing. Cubic close packing structure has face-centered cubic (FCC) unit cell.
In face-centered cubic unit cell, each of the six corners is occupied by every single atom. Each face of the cube is occupied by one atom.
Each atom in the corner is shared by eight unit cells and each atom in the face is shared by two unit cells. Thus the number of atoms per unit cell in FCC unit cell is,
8×18atomsincorners+6×12atomsinfaces=1+3=4atoms The edge length of one unit cell is given bya=2R2where a=edge length of unit cellR=radiusofatom
Answer to Problem 11.136QP
The density of solid Argon is 1.69g/cm3.
Explanation of Solution
Solid Argon has cubic close packing structure with face-centered cubic unit cells. The atomic radius of solid Argon is given. The formula for the edge length of the cubic unit cell is known as a=2R2 in which ‘a’ corresponds to edge length of the unit cell and ‘R’ corresponds to radius of the atom in the unit cell. The value is substituted and ‘a3’value is calculated. This value corresponds to the volume of the unit cell.
Accordingly calculate volume of FCC unit cell as shown below –
Each unit cell contains 4 Ar atoms. Therefore four times the average mass of one Argon atom gives mass of a unit cell of solid Argon. Hence the mass of a unit cell of solid Argon.
Average mass of one Ar atom=atomicmassofArAvogadronumber=39.95g6.022×1023=6.63×10-23g
Mass and volume of the unit cell is calculated in the previous steps. By substituting the values in the formula,density=massvolume the density of solid Argon is determined.
Please help me figure out what the slope is and how to calculate the half life Using the data provided.
Curved arrows are used to illustrate the flow of electrons. Follow
the curved arrows and draw the structure of the missing
reactants, intermediates, or products in the following mechanism.
Include all lone pairs. Ignore stereochemistry. Ignore inorganic
byproducts.
H
Br2 (1 equiv)
H-
Select to Draw
Starting Alkene
Draw Major
Product
I
I
H2O
四:
⑦..
Q
Draw Major
Charged
Intermediate
I
NH (aq)+CNO (aq) → CO(NH2)2(s)
Experiment
[NH4] (M) [CNO] (M) Initial rate (M/s)
1
0.014
0.02
0.002
23
0.028
0.02
0.008
0.014
0.01
0.001
Calculate the rate contant for this reaction using the data provided in the table.
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Unit Cell Chemistry Simple Cubic, Body Centered Cubic, Face Centered Cubic Crystal Lattice Structu; Author: The Organic Chemistry Tutor;https://www.youtube.com/watch?v=HCWwRh5CXYU;License: Standard YouTube License, CC-BY